WO2013134263A1 - Common light chain mouse - Google Patents

Common light chain mouse Download PDF

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Publication number
WO2013134263A1
WO2013134263A1 PCT/US2013/029125 US2013029125W WO2013134263A1 WO 2013134263 A1 WO2013134263 A1 WO 2013134263A1 US 2013029125 W US2013029125 W US 2013029125W WO 2013134263 A1 WO2013134263 A1 WO 2013134263A1
Authority
WO
WIPO (PCT)
Prior art keywords
human
mouse
light chain
region
sequence
Prior art date
Application number
PCT/US2013/029125
Other languages
French (fr)
Inventor
Robert Babb
John Mcwhirter
Lynn Macdonald
Sean Stevens
Samuel Davis
David R. Buckler
Karolina A. MEAGHER
Andrew J. Murphy
Original Assignee
Regeneron Pharmaceuticals, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US13/412,936 external-priority patent/US20120192300A1/en
Priority to RU2014140239A priority Critical patent/RU2683514C2/en
Priority to AU2013204140A priority patent/AU2013204140B2/en
Priority to EP13712618.1A priority patent/EP2822379A1/en
Priority to IN8163DEN2014 priority patent/IN2014DN08163A/en
Priority to MX2014010794A priority patent/MX353278B/en
Priority to CN201380012671.3A priority patent/CN104244709B/en
Priority to SG11201405088QA priority patent/SG11201405088QA/en
Application filed by Regeneron Pharmaceuticals, Inc. filed Critical Regeneron Pharmaceuticals, Inc.
Priority to KR20147026624A priority patent/KR20140136462A/en
Priority to CA2865029A priority patent/CA2865029A1/en
Priority to JP2014561037A priority patent/JP2015509380A/en
Priority to NZ630637A priority patent/NZ630637A/en
Publication of WO2013134263A1 publication Critical patent/WO2013134263A1/en
Priority to IL234207A priority patent/IL234207A0/en
Priority to HK15106625.3A priority patent/HK1205873A1/en
Priority to AU2016202488A priority patent/AU2016202488C1/en

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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
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    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/63Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
    • C12N15/79Vectors or expression systems specially adapted for eukaryotic hosts
    • C12N15/85Vectors or expression systems specially adapted for eukaryotic hosts for animal cells
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    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K67/00Rearing or breeding animals, not otherwise provided for; New or modified breeds of animals
    • A01K67/027New or modified breeds of vertebrates
    • A01K67/0275Genetically modified vertebrates, e.g. transgenic
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K67/00Rearing or breeding animals, not otherwise provided for; New or modified breeds of animals
    • A01K67/027New or modified breeds of vertebrates
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    • A01K67/0278Knock-in vertebrates, e.g. humanised vertebrates
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
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    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/22Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against growth factors ; against growth regulators
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    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K16/00Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
    • C07K16/18Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
    • C07K16/28Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
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    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/63Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
    • C12N15/79Vectors or expression systems specially adapted for eukaryotic hosts
    • C12N15/85Vectors or expression systems specially adapted for eukaryotic hosts for animal cells
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K2207/00Modified animals
    • A01K2207/15Humanized animals
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K2217/00Genetically modified animals
    • A01K2217/07Animals genetically altered by homologous recombination
    • A01K2217/072Animals genetically altered by homologous recombination maintaining or altering function, i.e. knock in
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01KANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
    • A01K2217/00Genetically modified animals
    • A01K2217/15Animals comprising multiple alterations of the genome, by transgenesis or homologous recombination, e.g. obtained by cross-breeding
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    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
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    • A01K2227/00Animals characterised by species
    • A01K2227/10Mammal
    • A01K2227/105Murine
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
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    • C07K2317/00Immunoglobulins specific features
    • C07K2317/10Immunoglobulins specific features characterized by their source of isolation or production
    • C07K2317/14Specific host cells or culture conditions, e.g. components, pH or temperature
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    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/20Immunoglobulins specific features characterized by taxonomic origin
    • C07K2317/21Immunoglobulins specific features characterized by taxonomic origin from primates, e.g. man
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    • C07K2317/00Immunoglobulins specific features
    • C07K2317/20Immunoglobulins specific features characterized by taxonomic origin
    • C07K2317/24Immunoglobulins specific features characterized by taxonomic origin containing regions, domains or residues from different species, e.g. chimeric, humanized or veneered
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    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/515Complete light chain, i.e. VL + CL
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/56Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
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    • C07ORGANIC CHEMISTRY
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    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/56Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
    • C07K2317/565Complementarity determining region [CDR]
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    • C07K2317/00Immunoglobulins specific features
    • C07K2317/50Immunoglobulins specific features characterized by immunoglobulin fragments
    • C07K2317/56Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
    • C07K2317/567Framework region [FR]
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    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2317/00Immunoglobulins specific features
    • C07K2317/70Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
    • C07K2317/76Antagonist effect on antigen, e.g. neutralization or inhibition of binding
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    • C07K2317/00Immunoglobulins specific features
    • C07K2317/90Immunoglobulins specific features characterized by (pharmaco)kinetic aspects or by stability of the immunoglobulin
    • C07K2317/92Affinity (KD), association rate (Ka), dissociation rate (Kd) or EC50 value
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    • C07ORGANIC CHEMISTRY
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    • C07K2319/00Fusion polypeptide
    • C07K2319/30Non-immunoglobulin-derived peptide or protein having an immunoglobulin constant or Fc region, or a fragment thereof, attached thereto
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    • C12N2800/00Nucleic acids vectors
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    • C12N2800/00Nucleic acids vectors
    • C12N2800/30Vector systems comprising sequences for excision in presence of a recombinase, e.g. loxP or FRT

Definitions

  • a genetically modified mouse that expresses antibodies having a common human variable/mouse constant light chain associated with diverse human variable/mouse constant heavy chains.
  • a method for making a human bispecific antibody from human variable region gene sequences of B cells of the mouse is provided.
  • Antibodies typically comprise a homodimeric heavy chain component, wherein each heavy chain monomer is associated with an identical light chain.
  • Antibodies having a heterodimeric heavy chain component e.g., bispecific antibodies
  • bispecific antibodies are desirable as therapeutic antibodies. But making bispecific antibodies having a suitable light chain component that can satisfactorily associate with each of the heavy chains of a bispecific antibody has proved problematic.
  • a light chain might be selected by surveying usage statistics for all light chain variable domains, identifying the most frequently employed light chain in human antibodies, and pairing that light chain in vitro with the two heavy chains of differing specificity.
  • a light chain might be selected by observing light chain sequences in a phage display library (e.g., a phage display library comprising human light chain variable region sequences, e.g., a human scFv library) and selecting the most commonly used light chain variable region from the library. The light chain can then be tested on the two different heavy chains of interest.
  • a phage display library e.g., a phage display library comprising human light chain variable region sequences, e.g., a human scFv library
  • a light chain might be selected by assaying a phage display library of light chain variable sequences using the heavy chain variable sequences of both heavy chains of interest as probes.
  • a light chain that associates with both heavy chain variable sequences might be selected as a light chain for the heavy chains.
  • a candidate light chain might be aligned with the heavy chains' cognate light chains, and modifications are made in the light chain to more closely match sequence characteristics common to the cognate light chains of both heavy chains. If the chances of immunogenicity need to be minimized, the modifications preferably result in sequences that are present in known human light chain sequences, such that proteolytic processing is unlikely to generate a T cell epitope based on parameters and methods known in the art for assessing the likelihood of immunogenicity (i.e., in siiico as well as wet assays).
  • mice that express human immunoglobulin heavy and light chain variable domains, wherein the mice have a limited light chain variable repertoire, are provided.
  • a biological system for generating a human light chain variable domain that associates and expresses with a diverse repertoire of affinity-matured human heavy chain variable domains is provided.
  • immunoglobulin variable domains comprising immunizing mice that have a limited immunoglobulin light chain repertoire with an antigen of interest, and employing an immunoglobulin variable region gene sequence of the mouse in a binding protein that specifically binds the antigen of interest.
  • Methods include methods for making human immunoglobulin heavy chain variable domains suitable for use in making multi-specific antigen-binding proteins.
  • Genetically engineered mice are provided that select suitable affinity-matured human immunoglobulin heavy chain variable domains derived from a repertoire of unrearranged human heavy chain variable region gene segments, wherein the affinity- matured human heavy chain variable domains associate and express with a single human light chain variable domain derived from one human light chain variable region gene segment. Genetically engineered mice that present a choice of two human light chain variable region gene segments are also provided.
  • mice that express a limited repertoire of human light chain variable domains, or a single human light chain variable domain, from a limited repertoire of human light chain variable region gene segments.
  • the mice are genetically engineered to include a single unrearranged human light chain variable region gene segment (or two human light chain variable region gene segments) that rearranges to form a rearranged human light chain variable region gene (or two rearranged light chain variable region genes) that express a single light chain (or that express either or both of two light chains).
  • the rearranged human light chain variable domains are capable of pairing with a plurality of affinity-matured human heavy chains selected by the mice, wherein the heavy chain variable regions specifically bind different epitopes.
  • mice that express a limited repertoire of human light chain variable domains, or a single human light chain variable domain, from a limited repertoire of human light chain variable region sequences.
  • the mice are genetically engineered to include a single V/J human light chain sequence (or two V/J sequences) that express a variable region of a single light chain (or that express either or both of two variable regions).
  • a light chain comprising the variable sequence is capable of pairing with a plurality of affinity-matured human heavy chains clonally selected by the mice, wherein the heavy chain variable regions specifically bind different epitopes.
  • a genetically modified mouse comprises a single human immunoglobulin light chain variable (V L ) region gene segment that is capable of rearranging with a human J gene segment (selected from one or a plurality of J L segments) and encoding a human V L domain of an immunoglobulin light chain.
  • the mouse comprises no more than two human V L gene segments, each of which is capable of rearranging with a human J gene segment (selected from one or a plurality of J L segments) and encoding a human V L domain of an immunoglobulin light chain.
  • the single human V L gene segment is operably linked to a human J L gene segment selected from JK1 , JK2, JK3, JK4, and JK5, wherein the single human V L gene segment is capable of rearranging to form a sequence encoding a light chain variable region gene with any of the one or more human J L gene segments.
  • the genetically modified mouse comprises an
  • the immunoglobulin light chain locus that does not comprise an endogenous mouse V L gene segment that is capable of rearranging to form an immunoglobulin light chain gene, wherein the V L locus comprises a single human V L gene segment that is capable of rearranging to encode a V L region of a light chain gene.
  • the human V L gene segment is a human VK1 -39JK5 gene segment or a human VK3-20JK1 gene segment.
  • the genetically modified mouse comprises a V L locus that does not comprise an endogenous mouse V L gene segment that is capable of rearranging to form an immunoglobulin light chain gene, wherein the VL locus comprises no more than two human V L gene segments that are capable of rearranging to encode a V L region of a light chain gene.
  • the no more than 2 human V L gene segments are a human VK1-39JK5 gene segment and a human VK3-20JK1 gene segment.
  • a genetically modified mouse comprising a single rearranged (V/J) human immunoglobulin light chain variable (V L ) region (i.e., a V L /JL region) that encodes a human V L domain of an immunoglobulin light chain.
  • V L human immunoglobulin light chain variable
  • the mouse comprises no more than two rearranged human V L regions that are capable of encoding a human V L domain of an immunoglobulin light chain.
  • the V L region is a rearranged human WI-39/J sequence or a rearranged human VK3-20/J sequence.
  • the human J L segment of the rearranged V L /JL sequence is selected from JK1 , JK2, JK3, JK4, and JK5.
  • the V L region is a human VK1-39JK5 sequence or a human VK3-20JK1 sequence.
  • the mouse has both a human VK1-39JK5 sequence and a human VK3-20JK1 sequence.
  • the human V L gene segment is operably linked to a human or mouse leader sequence.
  • the leader sequence is a mouse leader sequence.
  • the mouse leader sequence is a mouse VK3-7 leader sequence.
  • the leader sequence is operably linked to an unrearranged human V L gene segment.
  • the leader sequence is operably linked to a rearranged human V L /JL sequence.
  • V L gene segment is operably linked to an
  • the promoter sequence is a human promoter sequence.
  • the human immunoglobulin promoter is a human VK3-15 promoter.
  • the promoter is operably linked to an unrearranged human V L gene segment.
  • the promoter is operably linked to a rearranged human V L /JL sequence.
  • the light chain locus comprises a leader sequence flanked 5' (with respect to transcriptional direction of a V L gene segment) with a human
  • immunoglobulin promoter and flanked 3' with a human V L gene segment that rearranges with a human J segment and encodes a V L domain of a reverse chimeric light chain comprising an endogenous mouse light chain constant region (C L ).
  • C L endogenous mouse light chain constant region
  • the V L gene segment is at the mouse VK locus, and the mouse C L is a mouse
  • the light chain locus comprises a leader sequence flanked 5' (with respect to transcriptional direction of a V L gene segment) with a human
  • V L /J L sequence immunoglobulin promoter and flanked 3' with a rearranged human V L region (V L /J L sequence) and encodes a V L domain of a reverse chimeric light chain comprising an endogenous mouse light chain constant region (C L ).
  • the rearranged human V L /J L sequence is at the mouse kappa ( ⁇ ) locus, and the mouse C L is a mouse CK.
  • the V L locus of the modified mouse is a ⁇ light chain locus
  • the ⁇ light chain locus comprises a mouse ⁇ intronic enhancer, a mouse ⁇ 3' enhancer, or both an intronic enhancer and a 3' enhancer.
  • the mouse comprises a nonfunctional immunoglobulin lambda ( ⁇ ) light chain locus.
  • the ⁇ light chain locus comprises a deletion of one or more sequences of the locus, wherein the one or more deletions renders the ⁇ light chain locus incapable of rearranging to form a light chain gene.
  • all or substantially all of the V L gene segments of the ⁇ light chain locus are deleted.
  • mouse makes a light chain that comprises a somatically mutated V L domain derived from a human V L gene segment.
  • the light chain comprises a somatically mutated V L domain derived from a human V L gene segment, and a mouse CK region.
  • the mouse does not express a ⁇ light chain.
  • the genetically modified mouse is capable of somatically hypermutating the human V L region sequence.
  • the mouse comprises a cell that comprises a rearranged immunoglobulin light chain gene derived from a human V L gene segment that is capable of rearranging and encoding a V L domain, and the rearranged immunoglobulin light chain gene comprises a somatically mutated V L domain.
  • the mouse comprises a cell that expresses a light chain comprising a somatically mutated human V L domain linked to a mouse CK, wherein the light chain associates with a heavy chain comprising a somatically mutated V H domain derived from a human V H gene segment and wherein the heavy chain comprises a mouse heavy chain constant region (C H ).
  • the heavy chain comprises a mouse C H 1 , a mouse hinge, a mouse C H 2, and a mouse C H 3.
  • the heavy chain comprises a human C H 1 , a hinge, a mouse C H 2, and a mouse C H 3.
  • the mouse comprises a replacement of endogenous mouse V H gene segments with one or more human V H gene segments, wherein the human V H gene segments are operably linked to a mouse C H region gene, such that the mouse rearranges the human V H gene segments and expresses a reverse chimeric immunoglobulin heavy chain that comprises a human V H domain and a mouse C H .
  • 90-100% of unrearranged mouse V H gene segments are replaced with at least one unrearranged human V H gene segment.
  • all or substantially all of the endogenous mouse V H gene segments are replaced with at least one unrearranged human V H gene segment.
  • the replacement is with at least 19, at least 39, or at least 80 or 81 unrearranged human V H gene segments. In one embodiment, the replacement is with at least 12 functional unrearranged human V H gene segments, at least 25 functional unrearranged human V H gene segments, or at least 43 functional unrearranged human V H gene segments.
  • the mouse comprises a replacement of all mouse D H and J H segments with at least one unrearranged human D H segment and at least one unrearranged human J H segment. In one embodiment, the at least one unrearranged human D H segment is selected from 1-1 , D1-7, 1-26, 2-8, 2-15, 3-3, 3-10, 3-16, 3-22, 5-5, 5- 12, 6-6, 6-13, 7-27, and a combination thereof.
  • the at least one unrearranged human J H segment is selected from 1 , 2, 3, 4, 5, 6, and a combination thereof.
  • the one or more human V H gene segment is selected from a 1 -2, 1-8, 1 -24, 1-69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human V H gene segment, and a combination thereof.
  • the mouse comprises a B cell that expresses a binding protein that specifically binds an antigen of interest, wherein the binding protein comprises a light chain derived from a human VK1-39/JK5 rearrangement or a human VK3-20/JK1 rearrangement, and wherein the cell comprises a rearranged immunoglobulin heavy chain gene derived from a rearrangement of human V H gene segments selected from a 1-69, 2-5,
  • the one or more human V H gene segments are rearranged with a human heavy chain J H gene segment selected from 1 , 2, 3, 4, 5, and 6.
  • the one or more human V H and J H gene segments are rearranged with a human D H gene segment selected from 1-1 , 1- 7, 1-26, 2-8, 2-15, 3-3, 3-10, 3-16, 3-22, 5-5, 5-12, 6-6, 6-13, and 7-27.
  • the light chain gene has 1 , 2, 3, 4, or 5 or more somatic hypermutations.
  • the mouse comprises a B cell that comprises a rearranged immunoglobulin heavy chain variable region gene sequence comprising a V H /D H /JH region selected from 2-5/6-6/1 , 2-5/3-22/1 , 3-13/6-6/5, 3-23/2-8/4, 3-23/3-3/4, 3-23/3-10/4, 3-23/6- 6/4, 3-23/7-27/4, 3-30/1-1/4, 3-30/1-7/4, 3-30/3-3/3, 3-30/3-3/4, 3-30/3-22/5, 3-30/5-5/2, 3- 30/5-12/4, 3-30/6-6/1 , 3-30/6-6/3, 3-30/6-6/4, 3-30/6-6/5, 3-30/6-13/4, 3-30/7-27/4, 3-30/7- 27/5, 3-30/7-27/6, 3-33/1 -7/4, 3-33/2-15/4, 4-39/1 -26/3, 4-59/3-16/3, 4-59/3-16/4, 4-59/3- 22/3, 5-51/3-16/6, 5-51/5-5/3, 5-51/6-13/5, 3-53
  • immunoglobulin heavy chain variable region fused with a mouse heavy chain constant region
  • a human immunoglobulin light chain variable region fused with a mouse light chain constant region
  • the rearranged human V L region is a human VK1-39JK5 sequence
  • the mouse expresses a reverse chimeric light chain comprising (i) a V L domain derived from the human V L /JL sequence and (ii) a mouse C L ; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse C H and (ii) a somatically mutated human VH domain derived from a human V H gene segment selected from a 1-2, 1-8, 1 -24, 1 -69, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53,
  • the mouse expresses a light chain that is somatically mutated.
  • the C L is a mouse CK.
  • the human V H gene segment is selected from a 2-5, 3-13, 3-23, 3-30, 4-59, 5-51 , and 1 -69 gene segment.
  • the somatically mutated human V H domain comprises a sequence derived from a D H segment selected from 1-1 , 1-7, 2-8, 3-3, 3-10, 3-16, 3-22, 5-5, 5-12, 6-6, 6-13, and 7- 27.
  • the somatically mutated human V H domain comprises a sequence derived from a J H segment selected from 1 , 2, 3, 4, 5, and 6.
  • the somatically mutated human VH domain is encoded by a rearranged human VH/DH/JH sequence selected from 2-5/6-6/1 , 2-5/3-22/1 , 3-13/6-6/5, 3-23/2-8/4, 3-23/3-3/4, 3- 23/3-10/4, 3-23/6-6/4, 3-23/7-27/4, 3-30/1-1/4, 3-30/1 -7/4, 3-30/3-3/4, 3-30/3-22/5, 3-30/5- 5/2, 3-30/5-12/4, 3-30/6-6/1 , 3-30/6-6/3, 3-30/6-6/4, 3-30/6-6/5, 3-30/6-13/4, 3-30/7-27/4, 3- 30/7-27/5, 3-30/7-27/6, 4-59/3-16/3, 4-59/3-16/4, 4-59/3-22/3, 5-51/5-5/3, 1-69/6-6/5, and 1- 69/6-13/4
  • the rearranged human V L region is a human VK3-20JK1 sequence
  • the mouse expresses a reverse chimeric light chain comprising (i) a V L domain derived from the rearranged human V L /JL sequence, and (ii) a mouse C L ; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse C H , and (ii) a somatically mutated human V H derived from a human V H gene segment selected from a 1 -2, 1-8, 1-24, 1 -69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human V H gene segment, and a combination thereof.
  • the mouse expresses a light chain that is somatically mutated.
  • the C L is a mouse CK.
  • the human V H gene segment is selected from a 3-30, 3-33, 3-53, 4-39, and 5-51 gene segment. In a specific
  • the somatically mutated human V H domain comprises a sequence derived from a D H segment selected from 1 -1 , 1 -7, 1-26, 2-15, 3-3, 3-16, and 6-13.
  • the somatically mutated human V H domain comprises a sequence derived from a J H segment selected from 3, 4, 5, and 6.
  • the somatically mutated human V H domain is encoded by a rearranged human V H /D H /JH sequence selected from 3-30/1 -1/4, 3-30/3-3/3, 3-33/1-7/4, 3-33/2-15/4, 4-39/1-26/3, 5-51/3-16/6, 5-51/6-13/5, and 3-53/1-1/4.
  • the mouse comprises both a rearranged human VK1 -39J 5 sequence and a rearranged human VK3-20JK1 sequence, and the mouse expresses a reverse chimeric light chain comprising (i) a V L domain derived from the human VK1 -39JK5 sequence or the human VK3-20JK1 sequence, and (ii) a mouse CL; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse C H , and (ii) a somatically mutated human V H derived from a human V H gene segment selected from a 1-2, 1 -8, 1-24, 1 -69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human V H gene segment, and a combination thereof.
  • the mouse expresses a light chain that is somatically mutated.
  • the C L is a mouse CK.
  • 90-100% of the endogenous unrearranged mouse VH gene segments are replaced with at least one unrearranged human V H gene segment.
  • all or substantially all of the endogenous unrearranged mouse VH gene segments are replaced with at least one unrearranged human V H gene segment.
  • the replacement is with at least 18, at least 39, at least 80, or 81 unrearranged human V H gene segments.
  • the replacement is with at least 12 functional unrearranged human V H gene segments, at least 25 functional unrearranged human V H gene segments, or at least 43 unrearranged human V H gene segments.
  • the genetically modified mouse is a C57BL strain, in a specific embodiment selected from C57BL/A, C57BL/An, C57BL/GrFa, C57BL/KaLwN, C57BL/6, C57BL/6J, C57BL/6ByJ, C57BL/6NJ, C57BL/10, C57BL/10ScSn, C57BL/10Cr, and C57BL/Ola.
  • the genetically modified mouse is a mix of an aforementioned 129 strain and an aforementioned C57BL/6 strain.
  • the mouse is a mix of aforementioned 129 strains, or a mix of aforementioned BL/6 strains.
  • the 129 strain of the mix is a 129S6 (129/SvEvTac) strain.
  • the mouse expresses a reverse chimeric antibody comprising a light chain that comprises a mouse CK and a somatically mutated human V L domain derived from a rearranged human VK1-39JK5 sequence or a rearranged human VK3-20JK1 sequence, and a heavy chain that comprises a mouse C H and a somatically mutated human V H domain derived from a human V H gene segment selected from a 1-2, 1- 8, 1-24, 1-69, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , and a 6-1 human V H gene segment, wherein the mouse does not express a fully mouse antibody and does not express a fully human antibody.
  • the mouse comprises a ⁇ light chain locus that comprises a replacement of endogenous mouse K light chain gene segments with the rearranged human V 1-39JK5 sequence or the rearranged human VK3-20JK1 sequence, and comprises a replacement of all or substantially all endogenous mouse V H gene segments with a complete or substantially complete repertoire of human V H gene segments.
  • a population of antigen-specific antibodies derived from a mouse as described herein wherein the antibodies comprise a light chain gene derived from a human VK1-39/JK5 rearrangement or a human VK3-20/JK1 rearrangement, and wherein the antibodies comprise a rearranged immunoglobulin heavy chain gene derived from a rearrangement of a human V H gene segment selected from a 1-2, 1-3, 1-8, 1-18, 1- 24, 1-46, 1-58, 1-69, 2-5, 2-26, 2-70, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-16, 3-20, 3-21 , 3-23, 3-30, 3-33, 3-43, 3-48, 3-53, 3-64, 3-72, 3-73, 4-31 , 4-34, 4-39, 4-59, 5-51 , and a 6-1 human V H gene segment.
  • the one or more human V H gene segments are rearranged with a human heavy chain J H gene segment selected from 1 , 2, 3, 4, 5, and 6.
  • the light chain has 1 , 2, 3, 4, or 5 or more somatic hypermutations.
  • the light chain has 1 , 2, 3, or 4 somatic hypermutations.
  • the light chain gene has 1 or 2 mutations.
  • the light chain gene is capable of incurring multiple mutations along its sequence.
  • the light chain is derived from a human V 1 -39/JK5 rearrangement and the light chain has at least one or no more than four somatic
  • the light chain comprises at least two somatic hypermutations. In one embodiment, the light chain comprises at least three somatic hypermutations. In one embodiment, the light chain comprises at least four somatic hypermutations.
  • the mutations are present in one or more framework regions (FWs) of the light chain. In a specific embodiment, the mutations are present in one or more complementarity determining regions (CDRs) of the light chain. In a specific embodiment, the mutations are present in one or more FWs and/or one or more CDRs of the light chain.
  • the framework regions are selected from framework 1 (FW1), framework 2 (FW2), framework 3 (FW3), and/or a combination thereof. In various embodiments, the CDRs are selected from CDR1 , CDR2, CDR3, and/or a combination thereof.
  • the heavy chain comprises at least one mutation in one or more FWs or one or more CDRs. In one embodiment, the heavy chain comprises at least one mutation in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least two mutations in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least three mutations in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least four mutations in one or more FWs and one or more CDRs.
  • the heavy chain comprises at least five or more than five mutations in one or more FWs and one or more CDRs; in a specific embodiment, the heavy chain comprises at least five or more than five mutations in two FWs; in a specific embodiment, the heavy chain comprises at least five or more than five mutations in one FW and one CDR.
  • the light chain is derived from a human VK1-39/JK5
  • the VKl-39/JK5-derived light chains have at least one mutation present in FW1 ; in one embodiment, at least 9% of the light chains comprise one mutation present in FW1.
  • the light chain is derived from a human VK1- 39/JK5 rearrangement and about 25% of the VKl-39/J 5-derived light chains have at least one or no more than two mutations present in CDR1 ; in one embodiment, at least 19% of the light chains have one mutation present in CDR1 ; in one embodiment, at least 5% of the light chains have two mutations present in CDR1.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 20% of the VKl -39/jK5-derived light chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 17% of the light chains have one mutation present in FW2; in one embodiment, at least 1 % of the light chains have two mutations present in FW2; in one embodiment, at least 1 % of the light chains have three mutations present in FW2.
  • the light chain is derived from a human VK1-39/J 5 rearrangement and about 10% of the VKl-39/JK5-derived light chains have at least one or no more than two mutations present in CDR2; in one embodiment, at least 10% of the light chains have one mutation present in CDR2; in one embodiment, at least 1 % of the light chains have two mutations present in CDR2.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 29% of the VKl-39/JK5-derived light chains have at least one or no more than four mutations present in FW3; in one embodiment, at least 21 % of the light chains have one mutation present in FW3; in one embodiment, at least 5% of the light chains have two mutations present in FW3; in one embodiment, at least 2% of the light chains have three mutations present in FW3; in one embodiment, at least 2% of the light chains have four mutations present in FW3.
  • the light chain is derived from a human VK1 -39/JK5 rearrangement and about 37% of the VKl-39/JK5-derived light chains have at least one or no more than four mutations present in CDR3; in one embodiment, at least 27% of the light chains have one mutation present in CDR3; in one embodiment, at least 8% of the light chains have two mutations present in CDR3; in one embodiment, at least 1 % of the light chains have three mutations present in CDR3; in one embodiment, at least 1 % of the light chains have four mutations present in CDR3.
  • a population of antigen-specific antibodies derived from a mouse as described herein wherein the antibodies comprise a light chain derived from a human VK1 -39/JK5 rearrangement and about 9% of the Vi 1-39/JK5-derived light chains have one or more mutations present in FW1 , about 25% of the VK1-39/JK5- derived light chains have one or more mutations present in CDR1 , about 20% of the VK1- 39/JK5-derived light chains have one or more mutations present in F 2, about 10% of the Vi 1 -39/jK5-derived light chains have one or more mutations present in CDR2, about 29% of the VKl-39/JK5-derived light chains have one or more mutations present in FW3, and about 37% of the Vi 1 -39/JK5-derived light chains have one or more mutations present in CDR3.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 35% of the heavy chains have at least one mutation present in FW1 ; in one embodiment, at least 25% of the heavy chains have one mutation present in FW1 ; in one embodiment, at least 9 % of the heavy chains have two mutations present in FW1 ; in one embodiment, at least 1 % of the heavy chains have three mutations present in FW1 ; in one embodiment, at least 1 % of the heavy chains have more than five mutations present in FW1.
  • the light chain is derived from a human VK1 -39/J 5 rearrangement and about 92% of the heavy chains have at least one or no more than four mutations present in CDR1 ; in one embodiment, at least 92% of the heavy chains have at least one, at least two, at least three, or at least four mutations present in CDR1 ; in one embodiment, at least 26% of the heavy chains have one mutation present in CDR1 ; in one embodiment, at least 44% of the heavy chains have two mutations present in CDR1 ; in one embodiment, at least 19% of the heavy chains have three mutations present in CDR1 ; in one embodiment, at least 3% of the heavy chains have four mutations present in CDR1.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 66% of the heavy chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 66% of the heavy chains have at least one, at least two, or at least three mutations present in FW2; in one embodiment, at least 35% of the heavy chains have one mutation present in FW2; in one embodiment, at least 23% of the heavy chains have two mutations present in FW2; in one embodiment, at least 8% of the heavy chains have three mutations present in FW2.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 70% of the heavy chains have at least one or no more than four mutations present in CDR2; in one embodiment, at least 70% of the heavy chains have at least two, at least three, or at least four mutations present in CDR2; in one embodiment, at least 34% have one mutation present in CDR2; in one embodiment, at least 20% of the heavy chains have two mutations present in CDR2; in one embodiment, at least 12% of the heavy chains have three mutations present in CDR2; in one embodiment, at least 5% of the heavy chains have four mutations present in CDR2.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 91 % of the heavy chains have at least one or up to five or more mutations present in FW3; in one embodiment, at least 91 % of the heavy chains have at least two, at least three, at least four, or at least five or more mutations present in F 3; in one embodiment, at least 19% of the heavy chains have one mutation present in FW3; in one embodiment, at least 33% of the heavy chains have two mutations present in FW3; in one embodiment, at least 22% of the heavy chains have three mutations present in FW3; in one embodiment, at least 1 1 % of the heavy chains have four mutations present in FW3; in one embodiment, at least 7% of the heavy chains have five or more mutations present in FW3.
  • the light chain is derived from a human VK1-39/JK5 rearrangement and about 63% of the heavy chains have at least one or no more than two mutations present in CDR3; in one embodiment, at least 63% of the heavy chains have at one mutation present in CDR3; in one embodiment, at least 54% of the heavy chains have one mutation present in CDR3; in one embodiment, at least 9% of the heavy chains have two mutations present in CDR3.
  • a population of antigen-specific antibodies derived from a mouse as described herein wherein the antibodies comprise a light chain derived from a human VK1-39/JK5 rearrangement and at least 35% of the heavy chains have one or more mutations present in FW1 , about 92% of the heavy chains have one or more mutations present in CDR1 , about 66% of the heavy chains have one or more mutations present in FW2, about 70% of the heavy chains have one or more mutations present in CDR2, about 91 % of the heavy chains have one or more mutations present in FW3, and about 63% of the heavy chains have one or more mutations present in CDR3.
  • the light chain is derived from a human V 3-20/JK1 rearrangement and the light chain gene has at least one or no more than two somatic hypermutations; in one embodiment, the light chain gene has at least two, at least three, at least four or more somatic hypermutations.
  • the mutations are present in one or more framework regions of the light chain. In a specific embodiment, the mutations are present in one or more CDR regions of the light chain. In a specific embodiment, the mutations are present in one or more framework regions and/or one or more CDR regions of the light chain.
  • the framework regions are selected from framework 1 (FW1), framework 2 (FW2), framework 3 (FW3), and/or a combination thereof.
  • the light chain is derived from a human VK3-20/J 1 rearrangement and about 10% of the VK3-20/JK1 -derived light chains have at least one mutation present in FW1 ; in one embodiment, at least 10% of the light chains have one mutation in FW1.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 53% of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in CDR1 ; in one embodiment, at least 27% of the light chains have one or more mutations in CDR1 ; in one embodiment, about 54% of the light chains have one or two mutations present in CDR1 ,
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 6% of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in FW2; in one embodiment, at least 6% of light chains have at least one mutation present in FW2; in one embodiment, at least 3% of the light chains have one mutation present in FW2; in one embodiment, at least 3% of the light chains have two mutations present in FW2.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and at least about 3% of the VK3-20/JK1 -derived light chains have at least one mutation present in CDR2; in one embodiment, at least 3% of the light chains have one mutation in CDR2.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 17% or more of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in FW3; in one embodiment, at least 20% of the light chain have one mutation present in FW3; in one embodiment, at least 17% of the light chains have two mutations present in FW3.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and at least 43% of the VK3-20/JK1 -derived light chains have at least one mutation present in CDR3; in one embodiment, at least 43% of the light chains have one mutation in CDR3.
  • a population of antigen-specific antibodies derived from a mouse as described herein wherein the antibodies comprise a light chain derived from a human VK3-20/J 1 rearrangement and about 10% of the VK3-20/J 1 -derived light chains have one or more mutations present in at least, about 53% of the VK3-20/JK1- derived light chains have one or more mutations present in CDR1 , about 6% of the VK3- 20/JK1 -derived light chains have one or more mutations present in FW2, about 3% of the VK3-20/JK1 -derived light chains have one or more mutations present in CDR2, about 37% of the VK3-20/JK1 -derived light chains have one or more mutations present in FW3, and about 43% of the VK3-20/JK1 -derived light chains have one or more mutations present in CDR3.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 43% of the heavy chains have at least one or no more than two mutations present in FW1 ; in one embodiment, at least 41 % of the heavy chains have at least one mutation present in FW1 ; in one embodiment, about 41 % of the heavy chains have one mutation present in FW1 ; in one embodiment, about 2% of the heavy chains have two mutations present in FW1.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 92% of the heavy chains have at least one or no more than four mutations present in CDR1 ; in one embodiment, at least 43% of heavy chains have at least one mutation present in CDR1 ; in one embodiment, at least 25% of heavy chains have at least two mutations present in CDR1 ; in one embodiment, at least 15% of heavy chains have at least 3 mutations present in CDR1 ; in one embodiment, at least 10% of heavy chains have 4 or more mutations present in CDR1.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 46% of the heavy chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 34% of heavy chains have at least one mutation present in FW2; in one embodiment, at least 10% of heavy chains have two or more mutations present in FW2; in one embodiment, at least 2% of heavy chains have three or more mutations present in FW2.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 84% of the heavy chains have at least one or up to five or more than five mutations present in CDR2; in one embodiment, at least 39% of the heavy chains have one or more mutations present in CDR2; in one embodiment, at least 18% of the heavy chains have two or more mutations present in CDR2; in one embodiment, at least 21 % of the heavy chains have three or more mutations present in CDR2; in one embodiment, at least 3% of the heavy chains have four or more mutations present in CDR2; in one embodiment, at least 2% of the heavy chains have five or more mutations present in CDR2.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 92% of the heavy chains have at least one or up to five or more than five mutations present in FW3; in one embodiment, at least 21 % of the light chains have at least one mutation present in FW3; in one embodiment, at least 20% of heavy chains have at least two mutations present in FW3; in one embodiment, at least 13% of the heavy chains have at least three mutations present in FW3; in one embodiment, at least 20% of the heavy chains have at least four mutations in FW3; in one embodiment, at least 18% of the heavy chains have at lest 5 mutations in FW3.
  • the light chain is derived from a human VK3-20/JK1 rearrangement and about 7% of the heavy chains have at least one mutation present in CDR3; in one embodiment, about 7% of the heavy chains have one mutation in CDR3.
  • a population of antigen-specific antibodies derived from a mouse as described herein wherein the antibodies comprise a light chain derived from a human VK3-20/JK1 rearrangement and about 43% of the heavy chains have one or more mutations present in FW1 , about 92% of the heavy chains have one or more mutations present in CDR1 , about 46% of the heavy chains have one or more mutations present in FW2, about 84% of the heavy chains have one or more mutations present in CDR2, about 92% of the heavy chains have one or more mutations present in FW3, and about 7% of the heavy chains have one or more mutations present in CDR3.
  • a mouse that expresses an immunoglobulin light chain from a rearranged immunoglobulin light chain sequence is provided, wherein the rearranged immunoglobulin light chain sequence is present in the germline of the mouse, wherein the immunoglobulin light chain comprises a human variable sequence.
  • the germline of the mouse comprises a rearranged immunoglobulin light chain sequence that is derived from the same V segment and the same J segment as all non-surrogate light chain sequences present in every B cell of the mouse that comprises a rearranged light chain sequence.
  • the germline of the mouse lacks a functional unrearranged immunoglobulin light chain V gene segment. In one embodiment, the germline of the mouse lacks a functional unrearranged immunoglobulin light chain J gene segment.
  • the germline of the mouse comprises no more than one, no more than two, or no more than three rearranged (V/J) light chain sequences.
  • the rearranged V/J sequence comprises a ⁇ light chain sequence.
  • the ⁇ light chain sequence is a human ⁇ light chain sequence.
  • the ⁇ light chain sequence is selected from a human VK1 -39/J sequence, a human VK3-20/J sequence, and a combination thereof.
  • the light chain sequence is a human VK1-39/JK5 sequence.
  • the ⁇ light chain sequence is a human V 3-20/JK1 sequence.
  • the mouse further comprises in its germline a sequence selected from a mouse ⁇ intronic enhancer 5' with respect to the rearranged immunoglobulin light chain sequence, a mouse ⁇ 3' enhancer, and a combination thereof.
  • the mouse comprises an unrearranged human V H gene segment, an unrearranged human D H gene segment, and an unrearranged human J H gene segment, wherein said V H , D H , and JH gene segments are capable of rearranging to form an immunoglobulin heavy chain variable gene sequence operably linked to a heavy chain constant gene sequence.
  • the mouse comprises a plurality of human V H , DH, and J H gene segments.
  • the human V H , D H , and J H gene segments replace endogenous mouse V H , D H , and J H gene segments at the endogenous mouse immunoglobulin heavy chain locus.
  • the mouse comprises a replacement of all or substantially all functional mouse V H , D H , and J H gene segments with all or substantially all functional human V H , D H , and J H gene segments.
  • the mouse expresses an immunoglobulin light chain that comprises a mouse constant sequence. In one embodiment, the mouse expresses an immunoglobulin light chain that comprises a human constant sequence.
  • the mouse expresses an immunoglobulin heavy chain that comprises a mouse sequence selected from a C H 1 sequence, a hinge sequence, a C H 2 sequence, a C H 3 sequence, and a combination thereof.
  • the mouse expresses an immunoglobulin heavy chain that comprises a human sequence selected from a C H 1 sequence, a hinge sequence, a C H 2 sequence, a C H 3 sequence, and a combination thereof.
  • the rearranged immunoglobulin light chain sequence in the germline of the mouse is at an endogenous mouse immunoglobulin light chain locus.
  • the rearranged immunoglobulin light chain sequence in the germline of the mouse replaces all or substantially all mouse light chain V and J sequences at the endogenous mouse immunoglobulin light chain locus.
  • a mouse that comprises a B cell population
  • each B cell that comprises a non-surrogate light chain sequence comprises a rearranged light chain gene that is derived from a single human V segment and a single human J segment, wherein the only light chain variable sequence in the germline of the mouse is a rearranged sequence derived from the single human V segment and the single human J segment, and wherein each B ell that comprises the rearranged light chain gene further comprises a gene encoding a cognate human heavy chain variable domain, and wherein the rearranged light chain gene comprises at least one, at least two, at least three, or at least four somatic hypermutations.
  • a pluripotent, induced pluripotent, or totipotent cell derived from a mouse as described herein is provided.
  • the cell is a mouse embryonic stem (ES) cell.
  • tissue derived from a mouse as described herein is provided.
  • the tissue is derived from spleen, lymph node or bone marrow of a mouse as described herein.
  • nucleus derived from a mouse as described herein is provided.
  • the nucleus is from a diploid cell that is not a B cell.
  • a mouse cell that is isolated from a mouse as described herein.
  • the cell is an ES cell.
  • the cell is a lymphocyte.
  • the lymphocyte is a B cell.
  • the B cell expresses a chimeric heavy chain comprising a variable domain derived from a human gene segment; and a light chain derived from a rearranged human 1-39/J sequence, rearranged human VK3-20/J sequence, or a combination thereof; wherein the heavy chain variable domain is fused to a mouse constant region and the light chain variable domain is fused to a mouse or a human constant region.
  • a hybridoma is provided, wherein the hybridoma is made with a B cell of a mouse as described herein.
  • the B cell is from a mouse as described herein that has been immunized with an immunogen comprising an epitope of interest, and the B cell expresses a binding protein that binds the epitope of interest, the binding protein has a somatically mutated human V H domain and a mouse C H , and has a human V L domain derived from a rearranged human VK1 -39JK5 or a rearranged human VK3-20JK1 and a mouse C L .
  • a mouse embryo comprising a donor ES cell that is derived from a mouse as described herein.
  • a targeting vector comprising, from 5' to 3' in transcriptional direction with reference to the sequences of the 5' and 3' mouse homology arms of the vector, a 5' mouse homology arm, a human or mouse immunoglobulin promoter, a human or mouse leader sequence, and a human V L region selected from a rearranged human VK1-39JK5 or a rearranged human VK3-20JK1 , and a 3' mouse homology arm.
  • the 5' and 3' homology arms target the vector to a sequence 5' with respect to an enhancer sequence that is present 5' and proximal to the mouse CK gene.
  • the promoter is a human immunoglobulin variable region gene segment promoter. In a specific embodiment, the promoter is a human VK3-15 promoter. In one embodiment, the leader sequence is a mouse leader sequence. In a specific embodiment, the mouse leader sequence is a mouse V 3-7 leader sequence.
  • a targeting vector is provided as described above, but in place of the 5' mouse homology arm the human or mouse promoter is flanked 5' with a site-specific recombinase recognition site (SRRS), and in place of the 3' mouse homology arm the human V L region is flanked 3' with an SRRS.
  • SRRS site-specific recombinase recognition site
  • a reverse chimeric antibody made by a mouse as described herein, wherein the reverse chimeric antibody comprises a light chain comprising a human V L and a mouse C L , and a heavy chain comprising a human V H and a mouse CH.
  • a method for making an antibody comprising expressing in a single cell (a) a first V H gene sequence of an immunized mouse as described herein fused with a human CH gene sequence; (b) a V L gene sequence of an immunized mouse as described herein fused with a human CL gene sequence; and, (c) maintaining the cell under conditions sufficient to express a fully human antibody, and isolating the antibody.
  • the cell comprises a second V H gene sequence of a second immunized mouse as described herein fused with a human C H gene sequence, the first V H gene sequence encodes a V H domain that recognizes a first epitope, and the second V H gene sequence encodes a V H domain that recognizes a second epitope, wherein the first epitope and the second epitope are not identical.
  • a method for making an epitope-binding protein comprising exposing a mouse as described herein with an immunogen that comprises an epitope of interest, maintaining the mouse under conditions sufficient for the mouse to generate an immunoglobulin molecule that specifically binds the epitope of interest, and isolating the immunoglobulin molecule that specifically binds the epitope of interest; wherein the epitope-binding protein comprises a heavy chain that comprises a somatically mutated human V H and a mouse C H , associated with a light chain comprising a mouse C L and a human V L derived from a rearranged human VK1-39JK5 or a rearranged human VK3-20JK1 .
  • a cell that expresses an epitope-binding protein comprises: (a) a human nucleotide sequence encoding a human V L domain that is derived from a rearranged human VK1 -39JK5 or a rearranged human VK3-20JK1 , wherein the human nucleotide sequence is fused (directly or through a linker) to a human immunoglobulin light chain constant domain cDNA sequence (e.g., a human ⁇ constant domain DNA sequence); and, (b) a first human V H nucleotide sequence encoding a human V H domain derived from a first human V H nucleotide sequence, wherein the first human V H nucleotide sequence is fused (directly or through a linker) to a human immunoglobulin heavy chain constant domain cDNA sequence; wherein the epitope-binding protein recognizes a first epitope.
  • the epitope-binding protein binds the first epitope with a dissociation constant of lower than 1CT 6 M, lower than 10 "8 M, lower than 10 "9 M, lower than 1 Cr 10 M, lower than 10 "11 M, or lower than 1 CT 12 M.
  • the cell comprises a second human nucleotide sequence encoding a second human V H domain, wherein the second human sequence is fused (directly or through a linker) to a human immunoglobulin heavy chain constant domain cDNA sequence, and wherein the second human V H domain does not specifically recognize the first epitope (e.g., displays a dissociation constant of, e.g., 10 "6 M, 10 "5 M, 10 ⁇ 4 M, or higher), and wherein the epitope-binding protein recognizes the first epitope and the second epitope, and wherein the first and the second immunoglobulin heavy chains each associate with an identical light chain of (a).
  • the second human sequence is fused (directly or through a linker) to a human immunoglobulin heavy chain constant domain cDNA sequence
  • the second human V H domain does not specifically recognize the first epitope (e.g., displays a dissociation constant of, e.g., 10 "6 M, 10 "5 M, 10 ⁇ 4 M
  • the second V H domain binds the second epitope with a dissociation constant that is lower than 10 "6 M, lower than 10 "7 M, lower than 10 "8 M, lower than 1 fJ 9 M, lower than 10 "10 M, lower than 10 "11 M, or lower than 10 "12 M.
  • the epitope-binding protein comprises a first immunoglobulin heavy chain and a second immunoglobulin heavy chain, each associated with an identical light chain derived from a rearranged human V L region selected from a human VK1 -39JK5 or a human VK3-20JK1 , wherein the first immunoglobulin heavy chain binds a first epitope with a dissociation constant in the nanomolar to picomolar range, the second immunoglobulin heavy chain binds a second epitope with a dissociation constant in the nanomolar to picomolar range, the first epitope and the second epitope are not identical, the first immunoglobulin heavy chain does not bind the second epitope or binds the second epitope with a dissociation constant weaker than the micromolar range (e.g., the millimolar range), the second immunoglobulin heavy chain does not bind the first epitope or binds the first epitope with a dissociation
  • the first immunoglobulin heavy chain comprises a protein A- binding residue
  • the second immunoglobulin heavy chain lacks the protein A-binding residue
  • the cell is selected from CHO, COS, 293, HeLa, and a retinal cell expressing a viral nucleic acid sequence (e.g., a PERC.6TM cell).
  • a viral nucleic acid sequence e.g., a PERC.6TM cell.
  • a reverse chimeric antibody comprising a human V H and a mouse heavy chain constant domain, a human V L and a mouse light chain constant domain, wherein the antibody is made by a process that comprises immunizing a mouse as described herein with an immunogen comprising an epitope, and the antibody specifically binds the epitope of the immunogen with which the mouse was immunized.
  • the V L domain is somatically mutated.
  • the V H domain is somatically mutated.
  • both the V L domain and the V H domain are somatically mutated.
  • the V L is linked to a mouse C domain.
  • a mouse comprising human V H gene segments replacing all or substantially all mouse V H gene segments at the endogenous mouse heavy chain locus; no more than one or two rearranged human light chain V L /J L sequences selected from a rearranged VK1 -39/J and a rearranged VK3-20/J or a combination thereof, replacing all mouse light chain gene segments; wherein the human heavy chain variable gene segments are linked to a mouse constant gene, and the rearranged human light chain sequences are linked to a human or mouse constant gene.
  • a mouse ES cell comprising a replacement of all or substantially all mouse heavy chain variable gene segments with human heavy chain variable gene segments, and no more than one or two rearranged human light chain V L /JL sequences, wherein the human heavy chain variable gene segments are linked to a mouse
  • immunoglobulin heavy chain constant gene and the rearranged human light chain V L /JL sequences are linked to a mouse or human immunoglobulin light chain constant gene.
  • the light chain constant gene is a mouse constant gene.
  • an antigen-binding protein made by a mouse as described herein comprises a human immunoglobulin heavy chain variable region fused with a mouse constant region, and a human immunoglobulin light chain variable region derived from a 1-39 gene segment or a VK3-20 gene segment, wherein the light chain constant region is a mouse constant region.
  • a fully human antigen-binding protein made from an
  • the antigen-binding protein comprises a fully human heavy chain comprising a human variable region derived from a sequence of a mouse as described herein, and a fully human light chain comprising a 1 -39 or a VK3-20.
  • the light chain variable region comprises one to five somatic mutations.
  • the light chain variable region is a cognate light chain variable region that is paired in a B cell of the mouse with the heavy chain variable region.
  • the fully human antigen-binding protein comprises a first heavy chain and a second heavy chain, wherein the first heavy chain and the second heavy chain comprise non-identical variable regions independently derived from a mouse as described herein, and wherein each of the first and second heavy chains express from a host cell associated with a human light chain derived from a VK1-39 gene segment or a VK3- 20 gene segment.
  • the first heavy chain comprises a first heavy chain variable region that specifically binds a first epitope of a first antigen
  • the second heavy chain comprises a second heavy chain variable region that specifically binds a second epitope of a second antigen.
  • the first antigen and the second antigen are different.
  • first antigen and the second antigen are the same, and the first epitope and the second epitope are not identical; in a specific embodiment, binding of the first epitope by a first molecule of the binding protein does not block binding of the second epitope by a second molecule of the binding protein.
  • immunoglobulin sequence of a mouse as described herein comprises a first immunoglobulin heavy chain and a second immunoglobulin heavy chain, wherein the first immunoglobulin heavy chain comprises a first variable region that is not identical to a variable region of the second immunoglobulin heavy chain, and wherein the first immunoglobulin heavy chain comprises a wild type protein A binding determinant, and the second heavy chain lacks a wild type protein A binding determinant.
  • the first immunoglobulin heavy chain binds protein A under isolation conditions
  • the second immunoglobulin heavy chain does not bind protein A or binds protein A at least 10-fold, a hundred-fold, or a thousand-fold weaker than the first immunoglobulin heavy chain binds protein A under isolation conditions.
  • the first and the second heavy chains are lgG1 isotypes, wherein the second heavy chain comprises a modification selected from 95R (EU 435R), 96F (EU 436F), and a combination thereof, and wherein the first heavy chain lacks such modification.
  • a method for making a bispecific antigen-binding protein comprising exposing a first mouse as described herein to a first antigen of interest that comprises a first epitope, exposing a second mouse as described herein to a second antigen of interest that comprises a second epitope, allowing the first and the second mouse to each mount immune responses to the antigens of interest, identifying in the first mouse a first human heavy chain variable region that binds the first epitope of the first antigen of interest, identifying in the second mouse a second human heavy chain variable region that binds the second epitope of the second antigen of interest, making a first fully human heavy chain gene that encodes a first heavy chain that binds the first epitope of the first antigen of interest, making a second fully human heavy chain gene that encodes a second heavy chain that binds the second epitope of the second antigen of interest, expressing the first heavy chain and the second heavy chain in a cell that expresses a single
  • the first antigen and the second antigen are not identical.
  • the first antigen and the second antigen are identical, and the first epitope and the second epitope are not identical. In one embodiment, binding of the first heavy chain variable region to the first epitope does not block binding of the second heavy chain variable region to the second epitope.
  • the first antigen is selected from a soluble antigen and a cell surface antigen (e.g., a tumor antigen), and the second antigen comprises a cell surface receptor.
  • the cell surface receptor is an immunoglobulin receptor.
  • the immunoglobulin receptor is an Fc receptor.
  • the first antigen and the second antigen are the same cell surface receptor, and binding of the first heavy chain to the first epitope does not block binding of the second heavy chain to the second epitope.
  • the light chain variable domain of the light chain comprises 2 to 5 somatic mutations.
  • the light chain variable domain is a somatically mutated cognate light chain expressed in a B cell of the first or the second immunized mouse with either the first or the second heavy chain variable domain.
  • the first fully human heavy chain bears an amino acid modification that reduces its affinity to protein A, and he second fully human heavy chain does not comprise a modification that reduces its affinity to protein A.
  • an antibody or a bispecific antibody comprising a human heavy chain variable domain made in accordance with the invention is provided.
  • use of a mouse as described herein to make a fully human antibody or a fully human bispecific antibody is provided.
  • a genetically modified mouse, embryo, or cell described herein comprises a ⁇ light chain locus that retains endogenous regulatory or control elements, e.g., a mouse ⁇ intronic enhancer, a mouse ⁇ 3' enhancer, or both an intronic enhancer and a 3' enhancer, wherein the regulatory or control elements facilitate somatic mutation and affinity maturation of an expressed sequence of the ⁇ light chain locus.
  • endogenous regulatory or control elements e.g., a mouse ⁇ intronic enhancer, a mouse ⁇ 3' enhancer, or both an intronic enhancer and a 3' enhancer
  • a mouse that comprises a B cell population
  • immunoglobulin light chains derived from no more than one, or no more than two, rearranged or unrearranged immunoglobulin light chain V and J gene segments, wherein the mouse exhibits a ⁇ : ⁇ light chain ratio that is about the same as a mouse that comprises a wild type complement of immunoglobulin light chain V and J gene segments.
  • the immunoglobulin light chains are derived from no more than one, or no more than two, rearranged immunoglobulin light chain V and J gene segments. In a specific embodiment, the light chains are derived from no more than one rearranged immunoglobulin light chain V and J gene segments.
  • a mouse as described herein expresses an immunoglobulin light chain derived from no more than one, or no more than two, human VK/JK sequences, wherein the mouse comprises a replacement of all or substantially all endogenous mouse heavy chain variable region gene segments with one or more human heavy chain variable region gene segments, and the mouse exhibits a ratio of (a) CD19 + B cells that express an immunoglobulin having a ⁇ light chain, to (b) CD19 + B cells that express an immunoglobulin having a ⁇ light chain, of about 1 to about 20.
  • the mouse expresses a single ⁇ light chain derived from a human VK1-39JK5 sequence, and the ratio of CD19 + B cells that express an immunoglobulin having a ⁇ light chain to CD19 + B cells that express an immunoglobulin having a ⁇ light chain is about 1 to about 20; in one embodiment, the ratio is about 1 to at least about 66; in a specific embodiment, the ratio is about 1 to 66.
  • the mouse expresses a single ⁇ light chain derived from a human VK3-20JK5 sequence, and the ratio of CD19 + B cells that express an immunoglobulin having a ⁇ light chain to CD19 + B cells that express an immunoglobulin having a ⁇ light chain is about 1 to about 20; in one embodiment, the ratio is about 1 to about 21. In specific embodiments, the ratio is 1 to 20, or 1 to 21.
  • a genetically modified mouse that expresses a single rearranged ⁇ light chain, wherein the mouse comprises a functional ⁇ light chain locus, and wherein the mouse expresses a B cell population that comprises cells that express a ⁇
  • the percent of B cells in the mouse is about the same as in a wild type mouse. In a specific embodiment, the percent of B cells in the mouse is about 2 to about 6 percent. In a specific embodiment, the percent of B cells in a mouse wherein the single rearranged ⁇ light chain is derived from a VK1-39JK5 sequence is about 2 to about 3; in a specific embodiment, the percent is about 2.6. In a specific embodiment, the percent of B cells in a mouse wherein the single rearranged ⁇ light chain is derived from a VK3-20JK1 sequence is about 4 to about 8; in a specific embodiment, about 6.
  • a genetically modified mouse wherein the mouse expresses a single rearranged ⁇ light chain derived from a human VK and JK gene segment, wherein the mouse expresses a B cell population that comprises a single ⁇ light chain derived from the single rearranged ⁇ light chain sequence, wherein the genetically modified mouse has not been rendered resistant to somatic hypermutations.
  • at least 90% of the ⁇ light chains expressed on a B cell of the mouse exhibit from at least one to about five somatic hypermutations.
  • a genetically modified mouse is provided that is modified to express a single ⁇ light chain derived from no more than one, or no more than two, rearranged ⁇ light chain sequences, wherein the mouse exhibits a ⁇ light chain usage that is about two-fold or more, at least about three-fold or more, or at least about four-fold or more greater than the ⁇ light chain usage exhibited by a wild type mouse, or greater than the ⁇ light chain usage exhibited by a mouse of the same strain that comprises a wild type repertoire of ⁇ light chain gene segments.
  • the mouse expresses the single ⁇ light chain from no more than one rearranged ⁇ light chain sequence.
  • the rearranged ⁇ light chain sequence is selected from a VK1-39JK5 and VK3-20JK1 sequence. In one embodiment, the rearranged ⁇ light chain sequence is a VK1-39JK5 sequence. In one embodiment, the rearranged ⁇ light chain sequence is a VK3- 20JK1 sequence.
  • a genetically modified mouse that expresses a single ⁇ light chain derived from no more than one, or no more than two, rearranged ⁇ light chain sequences, wherein the mouse exhibits a ⁇ light chain usage that is about 100-fold or more, at least about 200-fold or more, at least about 300-fold or more, at least about 400-fold or more, at least about 500-fold or more, at least about 600-fold or more, at least about 700- fold or more, at least about 800-fold or more, at least about 900-fold or more, at least about 1000-fold or more greater than the same ⁇ light chain usage exhibited by a mouse bearing a complete or substantially complete human ⁇ light chain locus.
  • the mouse bearing a complete or substantially complete human ⁇ light chain locus lacks a functional unrearranged mouse ⁇ light chain sequence.
  • the mouse expresses the single ⁇ light chain from no more than one rearranged ⁇ light chain sequence.
  • the mouse comprises one copy of a rearranged ⁇ light chain sequence (e.g., a heterozygote).
  • the mouse comprises two copies of a rearranged ⁇ light chain sequence (e.g., a homozygote).
  • the rearranged ⁇ light chain sequence is selected from a V 1-39JK5 and VK3-20JK1 sequence.
  • the rearranged ⁇ light chain sequence is a VK1-39JK5 sequence.
  • the rearranged ⁇ light chain sequence is a VK3-20JK1 sequence.
  • a genetically modified mouse that expresses a single light chain derived from no more than one, or no more than two, rearranged light chain sequences, wherein the light chain in the genetically modified mouse exhibits a level of expression that is at least 10-fold to about 1 ,000-fold, 100-fold to about 1 ,000-fold, 200-fold to about 1 ,000-fold, 300-fold to about 1 ,000-fold, 400-fold to about 1 , 000-fold, 500-fold to about 1 ,000-fold, 600-fold to about 1 ,000-fold, 700-fold to about 1 ,000-fold, 800-fold to about 1 ,000-fold, or 900-fold to about 1 ,000-fold higher than expression of the same rearranged light chain exhibited by a mouse bearing a complete or substantially complete light chain locus.
  • the light chain comprises a human sequence.
  • the human sequence is a ⁇ sequence.
  • the human sequence is a ⁇ sequence.
  • the level of expression is characterized by quantitating mRNA of transcribed light chain sequence, and comparing it to transcribed light chain sequence of a mouse bearing a complete or substantially complete light chain locus.
  • a genetically modified mouse that expresses a single ⁇ light chain derived from no more than one, or no more than two, rearranged ⁇ light chain sequences, wherein the mouse, upon immunization with antigen, exhibits a serum titer that is comparable to a wild type mouse immunized with the same antigen.
  • the mouse expresses a single ⁇ light chain from no more than one rearranged K light chain sequence.
  • the serum titer is characterized as total immunoglobulin.
  • the serum titer is characterized as IgM specific titer.
  • the serum titer is characterized as IgG specific titer.
  • the rearranged ⁇ light chain sequence is selected from a VK1- 39JK5 and VK3-20JK1 sequence.
  • the rearranged ⁇ light chain sequence is a VK1-39JK5 sequence.
  • the rearranged ⁇ light chain sequence is a VK3-20JK1 sequence.
  • a genetically modified mouse that expresses a population of antigen-specific antibodies, wherein all of the immunoglobulin light chains of the population of antigen-specific antibodies comprise a human light chain variable (V L ) region derived from the same single human V L gene segment and the immunoglobulin heavy chains comprise a human heavy chain variable (V H ) region derived from one of a plurality of human V H gene segments.
  • V L human light chain variable
  • V H human heavy chain variable
  • the human V H gene segments are selected from V H 1-2, V H 1-3, V H 1 -8, V H 1-18, V H 1 -24, V H 1-46, V H 1 -58, V H 1 -69, V H 2-5, V H 2-26, V H 2-70, V H 3-7, V H 3- 9, V H 3-1 1 , V H 3-13, V H 3-15, V H 3-20, V H 3-21 , V H 3-23, V H 3-30, V H 3-33, V H 3-43, V H 3-48, V H 3- 53, V H 3-64, V H 3-72, V H 3-73, V H 4-31 , V H 4-34, V H 4-39, V H 4-59, V H 5-51 , and V H 6-1.
  • same single human V L gene segment is selected from a human VK1 -39 gene segment and a human VK3-20 gene segment.
  • all of the immunoglobulin light chains comprise a human light chain J (J
  • the human J L gene segment is selected from a human JK1 and a JK5 gene segment.
  • the mouse lacks a sequence selected from a mouse immunoglobulin V L gene segment, a mouse immunoglobulin J L gene segment, and a combination thereof.
  • the human V L region is operably linked to a human, mouse, or rat
  • the human V L region is operably linked to a mouse CK region. In a specific embodiment, the human V L region is operably linked to a rat CK region.
  • the human V L region is expressed from an endogenous immunoglobulin light chain locus.
  • the human V H region is operably linked to a human, mouse, or rat immunoglobulin heavy chain constant (CH) region.
  • the (C H ) region comprises a human sequence selected from a C H 1 , a hinge, a C H 2, a C H 3, a C H 4, and/or a combination thereof.
  • the human V H region is expressed from an endogenous immunoglobulin heavy chain locus.
  • a genetically modified mouse that expresses a plurality of immunoglobulin heavy chains associated with a single light chain.
  • the heavy chain comprises a human sequence.
  • the human sequence is selected from a variable sequence, a C H 1 , a hinge, a C H 2, a C H 3, and a combination thereof.
  • the single light chain comprises a human sequence.
  • the human sequence is selected from a variable sequence, a constant sequence, and a combination thereof.
  • the mouse comprises a disabled endogenous immunoglobulin locus and expresses the heavy chain and/or the light chain from a transgene or extrachromosomal episome.
  • the mouse comprises a replacement at an endogenous mouse locus of some or all endogenous mouse heavy chain gene segments (i.e., V, D, J), and/or some or all endogenous mouse heavy chain constant sequences (e.g., C H 1 , hinge, C H 2, C H 3, or a combination thereof), and/or some or all endogenous mouse light chain sequences (e.g., V, J, constant, or a combination thereof), with one or more human immunoglobulin sequences.
  • endogenous mouse heavy chain gene segments i.e., V, D, J
  • endogenous mouse heavy chain constant sequences e.g., C H 1 , hinge, C H 2, C H 3, or a combination thereof
  • endogenous mouse light chain sequences e.g., V, J, constant, or a combination thereof
  • a mouse suitable for making antibodies that have the same light chain is provided, wherein all or substantially all antibodies made in the mouse are expressed with the same light chain.
  • the light chain is expressed from an endogenous light chain locus.
  • a method for making a light chain for a human antibody comprising obtaining from a mouse as described herein a light chain sequence and a heavy chain sequence, and employing the light chain sequence and the heavy chain sequence in making a human antibody.
  • the human antibody is a bispecific antibody.
  • a method for identifying a human heavy chain variable domain that is capable of binding an antigen of interest with an engineered light chain as described herein comprises providing a heavy chain variable domain derived from a first antibody that is capable of binding the antigen, repairing the heavy chain variable domain with a germline light chain sequence and transfecting a cell so that each are expressed to form a second antibody, exposing the second antibody to the antigen, and measuring binding of the second antibody to the antigen.
  • the light chain of the first antibody comprises a human VK1 - 39 sequence. In one embodiment, the light chain of the first antibody comprises a human VK3-20 sequence. In one embodiment, the germline light chain sequence comprises a human VK1-39 or VK3-20 sequence. In various embodiments, binding of the second antibody to the antigen is determined by comparison of binding of the first antibody to the antigen.
  • FIG. 1 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VK1-39JK5 gene region.
  • FIG. 2 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VK3-20JK1 gene region.
  • FIG. 3 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VpreB/J 5 gene region.
  • FIG. 4 shows the percent of CD19 + B cells (y-axis) from peripheral blood for wild type mice (WT), mice homozygous for an engineered human rearranged VK1 -39JK5 light chain region (VK1-39JK5 HO) and mice homozygous for an engineered human rearranged VK3-20JK1 light chain region (VK3-20JK1 HO).
  • FIG. 5A shows the relative mRNA expression (y-axis) of a ⁇ -39-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK1 -39JK5 light chain region (VK1-39JK5 Junction Probe) and the human VK1 -39 gene segment (VK1-39 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and J gene segments ( ⁇ ), a wild type mouse (WT), and a mouse heterozygous for an engineered human rearranged VK1- 39JK5 light chain region (VK1-39JK5 HET). Signals are normalized to expression of mouse CK. N.D.: not detected.
  • FIG. 5B shows the relative mRNA expression (y-axis) of a ⁇ -39-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK1-39JK5 light chain region (VK1-39JK5 Junction Probe) and the human VK1-39 gene segment (VK1 -39 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and JK gene segments ( ⁇ ), a wild type mouse (WT), and a mouse homozygous for an engineered human rearranged VK1- 39JK5 light chain region (VK1-39JK5 HO). Signals are normalized to expression of mouse
  • FIG. 5C shows the relative mRNA expression (y-axis) of a VK3-20-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK3-20JK1 light chain region (VK3-20JK1 Junction Probe) and the human VK3-20 gene segment (VK3-20 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and JK gene segments ( ⁇ ), a wild type mouse (WT), and a mouse heterozygous (HET) and homozygous (HO) for an engineered human rearranged VK3-20JK1 light chain region.
  • Signals are normalized to expression of mouse CK.
  • the term "antibody”, as used herein, includes immunoglobulin molecules comprising four polypeptide chains, two heavy (H) chains and two light (L) chains interconnected by disulfide bonds.
  • Each heavy chain comprises a heavy chain variable (V H ) region and a heavy chain constant region (C H ).
  • the heavy chain constant region comprises three domains, C H 1 , C H 2 and C H 3.
  • Each light chain comprises a light chain variable (V L ) region and a light chain constant region (C L ).
  • the V H and V L regions can be further subdivided into regions of hypervariability, termed complementarity determining regions (CDR), interspersed with regions that are more conserved, termed framework regions (FR).
  • CDR complementarity determining regions
  • Each V H and V L comprises three CDRs and four FRs, arranged from amino-terminus to carboxy-terminus in the following order: FR1 , CDR1 , FR2, CDR2, FR3, CDR3, FR4 (heavy chain CDRs may be abbreviated as HCDR1 , HCDR2 and HCDR3; light chain CDRs may be abbreviated as LCDR1 , LCDR2 and LCDR3.
  • the term "high affinity" antibody refers to an antibody that has a K D with respect to its target epitope about of 10 M or lower (e.g., about 1 x 10 ⁇ 9 M, 1 x 10 "10 M, 1 x 10 "11 M, or about 1 x 10 "12 M).
  • K D is measured by surface plasmon resonance, e.g., BIACORETM; in another embodiment, K D is measured by ELISA.
  • bispecific antibody includes an antibody capable of selectively binding two or more epitopes.
  • Bispecific antibodies generally comprise two nonidentical heavy chains, with each heavy chain specifically binding a different epitope— either on two different molecules (e.g., different epitopes on two different immunogens) or on the same molecule (e.g., different epitopes on the same immunogen). If a bispecific antibody is capable of selectively binding two different epitopes (a first epitope and a second epitope), the affinity of the first heavy chain for the first epitope will generally be at least one to two or three or four or more orders of magnitude lower than the affinity of the first heavy chain for the second epitope, and vice versa.
  • Epitopes specifically bound by the bispecific antibody can be on the same or a different target (e.g., on the same or a different protein).
  • Bispecific antibodies can be made, for example, by combining heavy chains that recognize different epitopes of the same immunogen.
  • nucleic acid sequences encoding heavy chain variable sequences that recognize different epitopes of the same immunogen can be fused to nucleic acid sequences encoding the same or different heavy chain constant regions, and such sequences can be expressed in a cell that expresses an immunoglobulin light chain.
  • a typical bispecific antibody has two heavy chains each having three heavy chain CDRs, followed by (N-terminal to C-terminal) a C H 1 domain, a hinge, a C H 2 domain, and a CH3 domain, and an immunoglobulin light chain that either does not confer epitope- binding specificity but that can associate with each heavy chain, or that can associate with each heavy chain and that can bind one or more of the epitopes bound by the heavy chain epitope-binding regions, or that can associate with each heavy chain and enable binding or one or both of the heavy chains to one or both epitopes.
  • cell includes any cell that is suitable for expressing a recombinant nucleic acid sequence.
  • Cells include those of prokaryotes and eukaryotes (single-cell or multiple-cell), bacterial cells (e.g., strains of E. coli, Bacillus spp., Streptomyces spp., etc.), mycobacteria cells, fungal cells, yeast cells (e.g., S. cerevisiae, S. pombe, P. pastoris, P.
  • the cell is a human, monkey, ape, hamster, rat, or mouse cell.
  • the cell is eukaryotic and is selected from the following cells: CHO (e.g., CHO K1 , DXB-11 CHO, Veggie-CHO), COS (e.g., COS-7), retinal cell, Vero, CV1 , kidney (e.g., HEK293, 293 EBNA, MSR 293, MDCK, HaK, BHK), HeLa, HepG2, WI38, MRC 5, Colo205, HB 8065, HL-60, (e.g., BHK21 ), Jurkat, Daudi, A431 (epidermal), CV-1 , U937, 3T3, L cell, C127 cell, SP2/0, NS-0, MMT 060562, Sertoli cell, BRL 3A cell, HT1080 cell, myeloma cell, tumor cell, and a cell line derived from an aforementioned cell.
  • the cell comprises one or more viral genes, e.g., a retinal cell that
  • CDR complementarity determining region
  • a CDR includes an amino acid sequence encoded by a nucleic acid sequence of an organism's immunoglobulin genes that normally (i.e., in a wild type animal) appears between two framework regions in a variable region of a light or a heavy chain of an immunoglobulin molecule ⁇ e.g., an antibody or a T cell receptor).
  • a CDR can be encoded by, for example, a germline sequence or a rearranged or unrearranged sequence, and, for example, by a naive or a mature B cell or a T cell.
  • a CDR can be somatically mutated (e.g., vary from a sequence encoded in an animal's germline), humanized, and/or modified with amino acid substitutions, additions, or deletions.
  • CDRs can be encoded by two or more sequences (e.g., germline sequences) that are not contiguous (e.g., in an unrearranged nucleic acid sequence) but are contiguous in a B cell nucleic acid sequence, e.g., as the result of splicing or connecting the sequences (e.g., V-D-J recombination to form a heavy chain CDR3).
  • conservative amino acid substitution when used to describe a conservative amino acid substitution, includes substitution of an amino acid residue by another amino acid residue having a side chain R group with similar chemical properties (e.g., charge or hydrophobicity). In general, a conservative amino acid substitution will not substantially change the functional properties of interest of a protein, for example, the ability of a variable region to specifically bind a target epitope with a desired affinity.
  • groups of amino acids that have side chains with similar chemical properties include aliphatic side chains such as glycine, alanine, valine, leucine, and isoleucine; aliphatic-hydroxyl side chains such as serine and threonine; amide-containing side chains such as asparagine and glutamine; aromatic side chains such as phenylalanine, tyrosine, and tryptophan; basic side chains such as lysine, arginine, and histidine; acidic side chains such as aspartic acid and glutamic acid; and, sulfur-containing side chains such as cysteine and methionine.
  • aliphatic side chains such as glycine, alanine, valine, leucine, and isoleucine
  • aliphatic-hydroxyl side chains such as serine and threonine
  • amide-containing side chains such as asparagine and glutamine
  • aromatic side chains such as phenylalanine, tyrosine, and trypto
  • Conservative amino acids substitution groups include, for example, valine/leucine/isoleucine, phenylalanine/tyrosine, lysine/arginine, alanine/valine, glutamate/aspartate, and asparagine/glutamine.
  • a conservative amino acid substitution can be substitution of any native residue in a protein with alanine, as used in, for example, alanine scanning mutagenesis.
  • a conservative substitution is made that has a positive value in the PAM250 log-likelihood matrix disclosed in Gonnet et al. (1992) Exhaustive Matching of the Entire Protein Sequence Database, Science 256:1443-45.
  • the substitution is a moderately conservative substitution wherein the substitution has a nonnegative value in the PAM250 log-likelihood matrix.
  • residue positions in an immunoglobulin light chain or heavy chain differ by one or more conservative amino acid substitutions.
  • residue positions in an immunoglobulin light chain or functional fragment thereof e.g., a fragment that allows expression and secretion from, e.g., a B cell
  • residue positions in an immunoglobulin light chain or functional fragment thereof are not identical to a light chain whose amino acid sequence is listed herein, but differs by one or more conservative amino acid substitutions.
  • epitope-binding protein includes a protein having at least one CDR and that is capable of selectively recognizing an epitope, e.g., is capable of binding an epitope with a K D that is at about one micromolar or lower (e.g., a K D that is about 1 x 10 "6 M, 1 x 1 fJ 7 M, 1 x 1 fJ 9 M, 1 x 1 CT 9 M, 1 x 1 fJ 10 M, 1 x 1 CT 11 M, or about 1 x 1 fJ 12 M).
  • Therapeutic epitope-binding proteins e.g., therapeutic antibodies
  • the phrase "functional fragment” includes fragments of epitope-binding proteins that can be expressed, secreted, and specifically bind to an epitope with a K D in the micromolar, nanomolar, or picomolar range. Specific recognition includes having a K D that is at least in the micromolar range, the nanomolar range, or the picomolar range.
  • the term "germline” includes reference to an immunoglobulin nucleic acid sequence in a non-somatically mutated cell, e.g., a non-somatically mutated B cell or pre-B cell or hematopoietic cell.
  • heavy chain or “immunoglobulin heavy chain” includes an immunoglobulin heavy chain constant region sequence from any organism.
  • Heavy chain variable domains include three heavy chain CDRs and four FR regions, unless otherwise specified. Fragments of heavy chains include CDRs, CDRs and FRs, and combinations thereof.
  • a typical heavy chain has, following the variable domain (from N-terminal to C- terminal), a C H 1 domain, a hinge, a C H 2 domain, and a C H 3 domain.
  • a functional fragment of a heavy chain includes a fragment that is capable of specifically recognizing an epitope (e.g., recognizing the epitope with a K D in the micromolar, nanomolar, or picomolar range), that is capable of expressing and secreting from a cell, and that comprises at least one CDR.
  • an epitope e.g., recognizing the epitope with a K D in the micromolar, nanomolar, or picomolar range
  • identity when used in connection with sequence includes identity as determined by a number of different algorithms known in the art that can be used to measure nucleotide and/or amino acid sequence identity. In some embodiments described herein, identities are determined using a ClustalW v. 1.83 (slow) alignment employing an open gap penalty of 10.0, an extend gap penalty of 0.1 , and using a Gonnet similarity matrix (MACVECTORTM 10.0.2, MacVector Inc., 2008).
  • ClustalW v. 1.83 (slow) alignment employing an open gap penalty of 10.0, an extend gap penalty of 0.1 , and using a Gonnet similarity matrix (MACVECTORTM 10.0.2, MacVector Inc., 2008).
  • the length of the sequences compared with respect to identity of sequences will depend upon the particular sequences, but in the case of a light chain constant domain, the length should contain sequence of sufficient length to fold into a light chain constant domain that is capable of self-association to form a canonical light chain constant domain, e.g., capable of forming two beta sheets comprising beta strands and capable of interacting with at least one C H 1 domain of a human or a mouse. In the case of a C H 1 domain, the length of sequence should contain sequence of sufficient length to fold into a C H 1 domain that is capable of forming two beta sheets comprising beta strands and capable of interacting with at least one light chain constant domain of a mouse or a human.
  • immunoglobulin molecule includes two immunoglobulin heavy chains and two immunoglobulin light chains.
  • the heavy chains may be identical or different, and the light chains may be identical or different.
  • light chain includes an immunoglobulin light chain sequence from any organism, and unless otherwise specified includes human ⁇ and ⁇ light chains and a VpreB, as well as surrogate light chains.
  • Light chain variable (V L ) domains typically include three light chain CDRs and four framework (FR) regions, unless otherwise specified.
  • a full-length light chain includes, from amino terminus to carboxyl terminus, a V L domain that includes FR1 -CDR1 -FR2-CDR2-FR3-CDR3-FR4, and a light chain constant domain.
  • Light chains include those, e.g., that do not selectively bind either a first or a second epitope selectively bound by the epitope-binding protein in which they appear.
  • Light chains also include those that bind and recognize, or assist the heavy chain with binding and recognizing, one or more epitopes selectively bound by the epitope-binding protein in which they appear.
  • Common light chains are those derived from a rearranged human VK1-39JK5 sequence or a rearranged human VK3-20JK1 sequence, and include somatically mutated (e.g., affinity matured) versions.
  • micromolar range is intended to mean 1 -999 micromolar; the phrase “nanomolar range” is intended to mean 1-999 nanomolar; the phrase “picomolar range” is intended to mean 1-999 picomolar.
  • the phrase "somatically mutated” includes reference to a nucleic acid sequence from a B cell that has undergone class-switching, wherein the nucleic acid sequence of an immunoglobulin variable region (e.g., a heavy chain variable domain or including a heavy chain CDR or FR sequence) in the class-switched B cell is not identical to the nucleic acid sequence in the B cell prior to class-switching, such as, for example, a difference in a CDR or framework nucleic acid sequence between a B cell that has not undergone class- switching and a B cell that has undergone class-switching.
  • an immunoglobulin variable region e.g., a heavy chain variable domain or including a heavy chain CDR or FR sequence
  • “Somatically mutated” includes reference to nucleic acid sequences from affinity-matured B cells that are not identical to corresponding immunoglobulin variable region sequences in B cells that are not affinity- matured (i.e., sequences in the genome of germline cells).
  • the phrase “somatically mutated” also includes reference to an immunoglobulin variable region nucleic acid sequence from a B cell after exposure of the B cell to an epitope of interest, wherein the nucleic acid sequence differs from the corresponding nucleic acid sequence prior to exposure of the B cell to the epitope of interest.
  • mutated refers to sequences from antibodies that have been generated in an animal, e.g., a mouse having human immunoglobulin variable region nucleic acid sequences, in response to an immunogen challenge, and that result from the selection processes inherently operative in such an animal.
  • nucleic acid sequences that exist in the germline of an animal cell.
  • variable domain includes an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of an amino acid sequence of
  • immunoglobulin light or heavy chain (modified as desired) that comprises the following amino acid regions, in sequence from N-terminal to C-terminal (unless otherwise indicated): FR1 , CDR1 , FR2, CDR2, FR3, CDR3, FR4.
  • mouse heavy chain [00161] Generally, native mouse sequences are frequently not a good source for human therapeutic sequences. For at least that reason, generating mouse heavy chain
  • immunoglobulin variable regions that pair with a common human light chain is of limited practical utility. More in vitro engineering efforts would be expended in a trial-and-error process to try to humanize the mouse heavy chain variable sequences while hoping to retain epitope specificity and affinity while maintaining the ability to couple with the common human light chain, with uncertain outcome. At the end of such a process, the final product may maintain some of the specificity and affinity, and associate with the common light chain, but ultimately immunogenicity in a human would likely remain a profound risk.
  • a suitable mouse for making human therapeutics would include a suitably large repertoire of human heavy chain variable region gene segments in place of endogenous mouse heavy chain variable region gene segments.
  • the human heavy chain variable region gene segments should be able to rearrange and recombine with an endogenous mouse heavy chain constant domain to form a reverse chimeric heavy chain (i.e., a heavy chain comprising a human variable domain and a mouse constant region).
  • the heavy chain should be capable of class switching and somatic hypermutation so that a suitably large repertoire of heavy chain variable domains are available for the mouse to select one that can associate with the limited repertoire of human light chain variable regions.
  • a mouse that selects a common light chain for a plurality of heavy chains has a practical utility.
  • antibodies that express in a mouse that can only express a common light chain will have heavy chains that can associate and express with an identical or substantially identical light chain. This is particularly useful in making bispecific antibodies.
  • a mouse can be immunized with a first immunogen to generate a B cell that expresses an antibody that specifically binds a first epitope.
  • the mouse (or a mouse genetically the same) can be immunized with a second immunogen to generate a B cell that expresses an antibody that specifically binds the second epitope.
  • Variable heavy regions can be cloned from the B cells and expresses with the same heavy chain constant region, and the same light chain, and expressed in a cell to make a bispecific antibody, wherein the light chain component of the bispecific antibody has been selected by a mouse to associate and express with the light chain component.
  • the inventors have engineered a mouse for generating immunoglobulin light chains that will suitably pair with a rather diverse family of heavy chains, including heavy chains whose variable regions depart from germline sequences, e.g., affinity matured or somatically mutated variable regions.
  • the mouse is devised to pair human light chain variable domains with human heavy chain variable domains that comprise somatic mutations, thus enabling a route to high affinity binding proteins suitable for use as human therapeutics.
  • the genetically engineered mouse through the long and complex process of antibody selection within an organism, makes biologically appropriate choices in pairing a diverse collection of human heavy chain variable domains with a limited number of human light chain options.
  • the mouse is engineered to present a limited number of human light chain variable domain options in conjunction with a wide diversity of human heavy chain variable domain options.
  • the mouse Upon challenge with an immunogen, the mouse maximizes the number of solutions in its repertoire to develop an antibody to the immunogen, limited largely or solely by the number or light chain options in its repertoire. In various embodiments, this includes allowing the mouse to achieve suitable and compatible somatic mutations of the light chain variable domain that will nonetheless be compatible with a relatively large variety of human heavy chain variable domains, including in particular somatically mutated human heavy chain variable domains.
  • the mouse is engineered to render nonfunctional or substantially nonfunctional its ability to make, or rearrange, a native mouse light chain variable domain. This can be achieved, e.g., by deleting the mouse's light chain variable region gene segments.
  • the endogenous mouse locus can then be modified by an exogenous suitable human light chain variable region gene segment of choice, operably linked to the endogenous mouse light chain constant domain, in a manner such that the exogenous human variable region gene segments can combine with the
  • the light chain variable region is capable of being somatically mutated.
  • the appropriate enhancer(s) is retained in the mouse. For example, in modifying a mouse ⁇ light chain locus to replace endogenous mouse ⁇ light chain gene segments with human ⁇ light chain gene segments, the mouse ⁇ intronic enhancer and mouse ⁇ 3' enhancer are functionally maintained, or undisrupted.
  • a genetically engineered mouse is provided that expresses a limited repertoire of reverse chimeric (human variable, mouse constant) light chains associated with a diversity of reverse chimeric (human variable, mouse constant) heavy chains.
  • the endogenous mouse ⁇ light chain gene segments are deleted and replaced with a single (or two) rearranged human light chain region, operably linked to the endogenous mouse CK gene.
  • the mouse ⁇ intronic enhancer and the mouse ⁇ 3' enhancer are maintained.
  • the mouse also comprises a
  • nonfunctional ⁇ light chain locus or a deletion thereof or a deletion that renders the locus unable to make a ⁇ light chain.
  • a genetically engineered mouse comprises a light chain variable region locus lacking endogenous mouse light chain V L and Ji_ gene segments and comprising a rearranged human light chain variable region, in one embodiment a rearranged human V L /JL sequence, operably linked to a mouse constant region, wherein the locus is capable of undergoing somatic hypermutation, and wherein the locus expresses a light chain comprising the human V L /JL sequence linked to a mouse constant region.
  • the locus comprises a mouse ⁇ 3' enhancer, which is correlated with a normal, or wild type, level of somatic hypermutation.
  • the genetically engineered mouse in various embodiments when immunized with an antigen of interest generates B cells that exhibit a diversity of rearrangements of human immunoglobulin heavy chain variable regions that express and function with one or with two rearranged light chains, including embodiments where the one or two light chains comprise human light chain variable regions that comprise, e.g., 1 to 5 somatic mutations.
  • the human light chains so expressed are capable of associating and expressing with any human immunoglobulin heavy chain variable region expressed in the mouse.
  • compositions and methods of described herein can be used to make binding proteins that bind more than one epitope with high affinity, e.g., bispecific antibodies.
  • Advantages of the invention include the ability to select suitably high binding (e.g., affinity matured) heavy chain immunoglobulin chains each of which will associate with a single light chain.
  • Human V L and V H sequences from suitable B cells of immunized mice as described herein that express affinity matured antibodies having reverse chimeric heavy chains can be identified and cloned in frame in an expression vector with a suitable human constant region gene sequence (e.g., a human lgG1 ). Two such constructs can be prepared, wherein each construct encodes a human heavy chain variable domain that binds a different epitope.
  • One of the human V L s (e.g., human VK1 -39JK5 or human VK3-20JK1 ), in germline sequence or from a B cell wherein the sequence has been somatically mutated, can be fused in frame to a suitable human constant region gene (e.g., a human ⁇ constant gene).
  • a suitable human constant region gene e.g., a human ⁇ constant gene.
  • heterodimeric heavy chain with the identical light chain.
  • one of the heavy chains is modified to omit a Protein A-binding determinant, resulting in a differential affinity of a homodimeric binding protein from a heterodimeric binding protein.
  • Compositions and methods that address this issue are described in USSN 12/832,838, filed 25 June 2010, entitled “Readily Isolated Bispecific Antibodies with Native Immunoglobulin Format,” published as US 2010/0331527A1.
  • an epitope-binding protein as described herein wherein human V L and V H sequences are derived from mice described herein that have been immunized with an antigen comprising an epitope of interest.
  • an epitope-binding protein comprises a first and a second polypeptide, the first polypeptide comprising, from N-terminal to C-terminal, a first epitope-binding region that selectively binds a first epitope, followed by a constant region that comprises a first CH3 region of a human IgG selected from lgG1 , lgG2, lgG4, and a combination thereof; and, a second polypeptide comprising, from N-terminal to C-terminal, a second epitope-binding region that selectively binds a second epitope, followed by a constant region that comprises a second C H 3 region of a human IgG selected from lgG1 , lgG2, lgG4, and a combination thereof, wherein the second C H 3 region comprises a modification that reduces or eliminates binding of the second C H 3 domain to protein A.
  • the second C H 3 region comprises an H95R modification (by IMGT exon numbering; H435R by EU numbering). In another embodiment, the second C H 3 region further comprises a Y96F modification (IMGT; Y436F by EU).
  • the second C H 3 region is from a modified human lgG1 , and further comprises a modification selected from the group consisting of D16E, L18M, N44S, 52N, V57M, and V82I (IMGT; D356E, L358M, N384S, K392N, V397M, and V422I by EU).
  • the second C H 3 region is from a modified human lgG2, and further comprises a modification selected from the group consisting of N44S, K52N, and V82I (IMGT; N384S, K392N, and V422I by EU).
  • the second C H 3 region is from a modified human lgG4, and further comprises a modification selected from the group consisting of Q15R, N44S, K52N, V57M, R69K, E79Q, and V82I (IMGT; Q355R, N384S, K392N, V397M, R409K, E419Q, and V422I by EU).
  • One method for making an epitope-binding protein that binds more than one epitope is to immunize a first mouse in accordance with the invention with an antigen that comprises a first epitope of interest, wherein the mouse comprises an endogenous immunoglobulin light chain variable region locus that does not contain an endogenous mouse V L that is capable of rearranging and forming a light chain, wherein at the
  • endogenous mouse immunoglobulin light chain variable region locus is a single rearranged human V L region operably linked to the mouse endogenous light chain constant region gene, and the rearranged human V L region is selected from a human VK1-39JK5 and a human VK3-20JK1 , and the endogenous mouse V H gene segments have been replaced in whole or in part with human V H gene segments, such that immunoglobulin heavy chains made by the mouse are solely or substantially heavy chains that comprise human variable domains and mouse constant domains.
  • a reverse chimeric antibody comprising only one of two human light chain variable domains (e.g., one of human VK1 -39JK5 or human VK3-20JK1).
  • the nucleotide sequence of the V H (and, optionally, the V L ) can be retrieved (e.g., by PCR) and cloned into an expression construct in frame with a suitable human immunoglobulin constant domain. This process can be repeated to identify a second V H domain that binds a second epitope, and a second V H gene sequence can be retrieved and cloned into an expression vector in frame to a second suitable immunoglobulin constant domain.
  • the first and the second immunoglobulin constant domains can the same or different isotype, and one of the immunoglobulin constant domains (but not the other) can be modified as described herein or in US 2010/0331527A1 , and epitope-binding protein can be expressed in a suitable cell and isolated based on its differential affinity for Protein A as compared to a homodimeric epitope-binding protein, e.g., as described in US
  • a method for making a bispecific epitope-binding protein comprising identifying a first affinity-matured (e.g., comprising one or more somatic hypermutations) human V H nucleotide sequence (V H 1) from a mouse as described herein, identifying a second affinity-matured (e.g., comprising one or more somatic hypermutations) human V H nucleotide sequence (V H 2) from a mouse as described herein, cloning V H 1 in frame with a human heavy chain lacking a Protein A-determinant modification as described in US 2010/0331527A1 for form heavy chain 1 (HC1), cloning V H 2 in frame with a human heavy chain comprising a Protein A-determinant as described in US 2010/0331527A1 to form heavy chain 2 (HC2), introducing an expression vector comprising HC1 and the same or a different expression vector comprising HC2 into a cell, wherein the cell also expresses
  • HC1 is an lgG1
  • HC2 is an lgG1 that comprises the modification H95R (IMGT; H435R by EU) and further comprises the modification Y96F (IMGT; Y436F by EU).
  • the VH domain encoded by V H 1 the V H domain encoded by V H 2, or both, are somatically mutated.
  • a variety of human variable regions from affinity-matured antibodies raised against four different antigens were expressed with either their cognate light chain, or at least one of a human light chain selected from human VK1-39JK5, human VK3-20JK1 , or human VpreBJ 5 (see Example 1 ).
  • a human light chain selected from human VK1-39JK5, human VK3-20JK1 , or human VpreBJ 5 (see Example 1 ).
  • somatically mutated high affinity heavy chains from different gene families paired successfully with rearranged human germline VK1-39JK5 and VK3-20JK1 regions and were secreted from cells expressing the heavy and light chains.
  • V H domains derived from the following human V H gene families expressed favorably: 1-2, 1-8, 1 -24, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 4-31 , 4-39, 4-59, 5-51 , and 6-1 .
  • a mouse that is engineered to express a limited repertoire of human V L domains from one or both of VK1-39JK5 and VK3-20JK1 will generate a diverse population of somatically mutated human V H domains from a VH locus modified to replace mouse V H gene segments with human V H gene segments.
  • mice genetically engineered to express reverse chimeric (human variable, mouse constant) immunoglobulin heavy chains associated with a single rearranged light chain (e.g., a VK1 -39/J or a VK3-20/J), when immunized with an antigen of interest, generated B cells that comprised a diversity of human V H rearrangements and expressed a diversity of high- affinity antigen-specific antibodies with diverse properties with respect to their ability to block binding of the antigen to its ligand, and with respect to their ability to bind variants of the antigen (see Examples 5 through 10).
  • a single rearranged light chain e.g., a VK1 -39/J or a VK3-20/J
  • mice and methods described herein are useful in making and selecting human immunoglobulin heavy chain variable domains, including somatically mutated human heavy chain variable domains, that result from a diversity of rearrangements, that exhibit a wide variety of affinities (including exhibiting a KD of about a nanomolar or less), a wide variety of specificities (including binding to different epitopes of the same antigen), and that associate and express with the same or substantially the same human immunoglobulin light chain variable region.
  • An in vitro expression system was constructed to determine if a single rearranged human germline light chain could be co-expressed with human heavy chains from antigen specific human antibodies.
  • VELOCIMMUNE® technology involves generation of a genetically modified mouse having a genome comprising human heavy and light chain variable regions operably linked to endogenous mouse constant region loci such that the mouse produces an antibody comprising a human variable region and a mouse constant region in response to antigenic stimulation.
  • the DNA encoding the variable regions of the heavy and light chains of the antibodies produced from a VELOCIMMUNE® mouse are fully human.
  • high affinity chimeric antibodies are isolated having a human variable region and a mouse constant region. As described below, the antibodies are characterized and selected for desirable characteristics, including affinity, selectivity, epitope, etc.
  • the mouse constant regions are replaced with a desired human constant region to generate a fully human antibody containing a non-lgM isotype, for example, wild type or modified lgG1 , lgG2, lgG3 or lgG4. While the constant region selected may vary according to specific use, high affinity antigen- binding and target specificity characteristics reside in the variable region.
  • a VELOCIMMUNE® mouse was immunized with a growth factor that promotes angiogenesis (Antigen C) and antigen-specific human antibodies were isolated and sequenced for V gene usage using standard techniques recognized in the art. Selected antibodies were cloned onto human heavy and light chain constant regions and 69 heavy chains were selected for pairing with one of three human light chains: (1 ) the cognate ⁇ light chain linked to a human ⁇ constant region, (2) a rearranged human germline VK1-39J 5 linked to a human ⁇ constant region, or (3) a rearranged human germline VK3-20JK1 linked to a human ⁇ constant region. Each heavy chain and light chain pair were co-transfected in CHO-K1 cells using standard techniques.
  • Presence of antibody in the supernatant was detected by anti-human IgG in an ELISA assay.
  • Antibody titer (ng/ml) was determined for each heavy chain/light chain pair and titers with the different rearranged germline light chains were compared to the titers obtained with the parental antibody molecule (i.e., heavy chain paired with cognate light chain) and percent of native titer was calculated (Table 1 ).
  • V H Heavy chain variable gene.
  • ND no expression detected under current experimental conditions.
  • VELOCIMMUNE® mice were immunized with several different antigens and selected heavy chains of antigen specific human antibodies were tested for their ability to pair with different rearranged human germline light chains (as described above).
  • the antigens used in this experiment included an enzyme involved in cholesterol homeostasis (Antigen A), a serum hormone involved in regulating glucose homeostasis (Antigen B), a growth factor that promotes angiogenesis (Antigen C) and a cell- surface receptor (Antigen D).
  • Antigen specific antibodies were isolated from mice of each immunization group and the heavy chain and light chain variable regions were cloned and sequenced.
  • V gene usage was determined and selected heavy chains were paired with either their cognate light chain or a rearranged human germline VK1-39JK5 region. Each heavy/light chain pair was co- transfected in CHO-K1 cells and the presence of antibody in the supernatant was detected by anti-human IgG in an ELISA assay.
  • Antibody titer (Mg/ml) was determined for each heavy chain/light chain pairing and titers with the different rearranged human germline light chains were compared to the titers obtained with the parental antibody molecule (i.e., heavy chain paired with cognate light chain) and percent of native titer was calculated (Table 2).
  • V H Heavy chain variable gene.
  • VK K light chain variable gene.
  • ND no expression detected under current experimental conditions.
  • both rearranged human germline light chains conferred an increase in expression as compared to the cognate light chain of the parental antibody.
  • the rearranged human germline VK1 -39JK5 region conferred an increase in expression of several heavy chains specific for a range of different classes of antigens as compared to the cognate light chain for the parental antibodies.
  • Antibody titer was increased by more than two-fold for about 35% (15/43) of the heavy chains as compared to the cognate light chain of the parental antibodies. For two heavy chains (315 and 316), the increase was greater than ten-fold as compared to the parental antibody.
  • V H3 family three heavy chains are over represented in comparison to other heavy chain variable region gene families. This demonstrates a favorable relationship of human VH3 heavy chains to pair with rearranged human germline VK1-39JK5 and VK3-20JK1 light chains.
  • a DNA segment containing exon 1 (encoding the leader peptide) and intron 1 of the mouse VK3-7 gene was made by de novo DNA synthesis (Integrated DNA
  • a portion of the human JK-CK intron including the splice donor site was PCR amplified from plasmid pBS-296-HA18-PIScel.
  • the forward PCR primer included an extension encoding part of either a human JK5, JK1 , or J 5 sequence.
  • the reverse primer included a Pl-Scel site, which was previously engineered into the intron.
  • mice VK3-7 exonl/intron 1 , human variable light chain exons, and human JK-CK intron fragments were sewn together by overlap extension PCR, digested with Blpl and Pl-Scel, and ligated into plasmid pBS-296-HA18-PIScel, which contained the promoter from the human VK3-15 variable gene segment.
  • a loxed hygromycin cassette within plasmid pBS-296-HA18-PIScel was replaced with a FRTed hygromycin cassette flanked by Notl and AscI sites.
  • the Notl/PI-Scel fragment of this plasmid was ligated into modified mouse BAC 254m04, which contained part of the mouse JK-CK intron, the mouse C exon, and about 75 kb of genomic sequence downstream of the mouse ⁇ locus, which provided a 3' homology arm for homologous recombination in mouse ES cells.
  • the Notl/AscI fragment of this BAC was then ligated into modified mouse BAC 302g12, which contained a FRTed neomycin cassette and about 23 kb of genomic sequence upstream of the endogenous ⁇ locus for homologous recombination in mouse ES cells.
  • Restriction enzyme sites were introduced at the 5' and 3' ends of an engineered light chain insert for cloning into a targeting vector: an AscI site at the 5' end and a Pl-Scel site at the 3' end.
  • the targeting construct from 5' to 3' included a 5' homology arm containing sequence 5' to the endogenous mouse ⁇ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, an genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse VK3-7 variable gene segment, a intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VK1-39JK5 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 25
  • Targeted insertion of the rearranged human germline VK1-39JK5 region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline light chain region. Briefly, the intron sequence 3' to the mouse 3-7 leader sequence was confirmed with primers ULC-m1 F (AGGTGAGGGT ACAGATAAGT GTTATGAG; SEQ ID NO:2) and ULC-m1 R
  • neoF GGTGGAGAGG CTATTCGGC; SEQ ID NO:6
  • neoR GACACGGCG G CATC AG; SEQ ID NO:7
  • Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express a rearranged human germline VK1-39JK5 region.
  • Positive ES cell clones were confirmed by TAQMANTM screening and karyotyping using probes specific for the engineered VK1-39JK5 light chain region inserted into the endogenous locus.
  • probe neoP TGGGCACAAC AGACAATCGG CTG; SEQ ID NO:8 which binds within the neomycin marker gene
  • probe ULC-m1 P CATTATGAT GCTCCATGCC TCTCTGTTC; SEQ ID NO:9 which binds within the intron sequence 3' to the mouse VK3-7 leader sequence
  • probe 1633h2P ATCAGCAGAA ACCAGGGAAA GCCCCT; SEQ ID NO: 10 which binds within the rearranged human germline VK1 -39JK5 open reading frame.
  • Positive ES cell clones were then used to implant female mice to give rise to a litter of pups expressing the germline VK1-39JK5 light chain region.
  • ES cells bearing the rearranged human germline VK1-39JK5 light chain region are transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct.
  • the neomycin cassette is removed by breeding to mice that express FLP recombinase (e.g., US
  • the neomycin cassette is retained in the mice.
  • Rearranged Human Germline VK3-20JK1 Targeting Vector (FIG. 2).
  • a targeting construct including, from 5' to 3', a 5' homology arm containing sequence 5' to the endogenous mouse ⁇ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, a genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse V 3-7 variable gene segment, an intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VK3-20JK1 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 ( Figure 2, middle).
  • the sequence of the sequence of the sequence of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 ( Figure 2, middle).
  • Targeted insertion of the rearranged human germline VK3-20JK1 region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline VK3-20JK1 light chain region.
  • PCR polymerase chain reaction
  • the intron sequence 3' to the mouse VK3-7 leader sequence was confirmed with primers ULC- m1 F (SEQ ID NO:2) and ULC-m1 R (SEQ ID NO:3).
  • the open reading frame of the rearranged human germline VK3-20JK1 region was confirmed with primers 1635-h2F (TCCAGGCACC CTGTCTTTG; SEQ ID NO: 12) and 1635-h2R (AAGTAGCTGC
  • neomycin cassette was confirmed with primers neoF (SEQ ID NO:6) and neoR (SEQ ID NO:7).
  • Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express the rearranged human germline VK3-20JK1 light chain.
  • Positive ES cell clones were confirmed by TAQ ANTM screening and karyotyping using probes specific for the engineered VK3-20JK1 light chain region inserted into the endogenous ⁇ light chain locus. Briefly, probe neoP (SEQ ID NO:8) which binds within the neomycin marker gene, probe ULC-m1 P (SEQ ID NO:9) which binds within the mouse VK3- 7 leader sequence, and probe 1635h2P (AAAGAGCCAC CCTCTCCTGC AGGG; SEQ ID NO: 14) which binds within the human VK3-20JK1 open reading frame. Positive ES cell clones were then used to implant female mice. A litter of pups expressing the human germline VK3-20JK1 light chain region.
  • ES cells bearing human germline VK3-20JK1 light chain region can be transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct.
  • the neomycin cassette may be removed by breeding to mice that express FLP recombinase (e.g., US 6,774,279).
  • the neomycin cassette is retained in the mice.
  • FIG. 3 Rearranged Human Germline VpreBJ 5 Targeting Vector
  • an engineered light chain locus expressing a rearranged human germline VpreBJX5 region was made using a targeting construct including, from 5' to 3', a 5' homology arm containing sequence 5' to the endogenous mouse ⁇ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, an genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse VK3-7 variable gene segment, an intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VpreBJ 5 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 ( Figure 3, middle).
  • Targeted insertion of the rearranged human germline VpreBJ S region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline VpreBJ 5 region light chain region.
  • GGTCGTTCCT SEQ ID NO:17
  • the neomycin cassette was confirmed with primers neoF (SEQ ID NO:6) and neoR (SEQ ID NO:7).
  • Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express the rearranged human germline VpreBJ 5 light chain.
  • Positive ES cell clones are confirmed by TAQMANTM screening and karyotyping using probes specific for the engineered VpreBJ 5 light chain region inserted into the endogenous ⁇ light chain locus. Briefly, probe neoP (SEQ ID NO:8) which binds within the neomycin marker gene, probe ULC-m1 P (SEQ ID NO:9) which binds within the mouse lgVic3-7 leader sequence, and probe 1616M P (ACAATCCGCC TCACCTGCAC CCT; SEQ ID NO:18) which binds within the human VpreBJ 5 open reading frame. Positive ES cell clones are then used to implant female mice to give rise to a litter of pups expressing a germline light chain region.
  • ES cells bearing the rearranged human germline VpreBJ 5 light chain region are transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct.
  • the neomycin cassette is removed by breeding to mice that express FLP recombinase ⁇ e.g., US
  • the neomycin cassette is retained in the mice.
  • Targeted ES cells described above were used as donor ES cells and introduced into an 8-cell stage mouse embryo by the VELOCIMOUSE® method (see, e.g., US Pat. No. 7,294,754 and Poueymirou et al. (2007) F0 generation mice that are essentially fully derived from the donor gene-targeted ES cells allowing immediate phenotypic analyses Nature Biotech. 25(1 ):91 -99.
  • VELOCIMICE® independently bearing an engineered human germline VK1-39JK5 light chain region, a VK3-20JK1 light chain region or a light chain region are identified by genotyping using a modification of allele assay (Valenzuela et al., supra) that detects the presence of the unique rearranged human germline light chain region.
  • Pups are genotyped and a pup heterozygous or homozygous for the unique rearranged human germline light chain region are selected for characterizing expression of the rearranged human germline light chain region.
  • Table 3 sets forth the percent positive CD19 + B cells from peripheral blood of one representative mouse from each group that are lg + , lgK + , or lg + lgK + . Percent of CD19 + B cells in peripheral blood from wild type (WT) and mice homozygous for either the VK1-39JK5 or VK3-20JK1 common light chain are shown in FIG. 4.
  • CD19 + B cells were purified from the spleens of wild type, mice homozygous for a replacement of the mouse heavy chain and ⁇ light chain variable region loci with corresponding human heavy chain and ⁇ light chain variable region loci ( ⁇ ), as well as mice homozygous and heterozygous for each rearranged human light chain region (VK1-39JK5 or VK3-20JK1) using mouse CD19 Microbeads (Miltenyi Biotec) according to manufacturer's specifications.
  • Total RNA was purified from CD19 + B cells using RNeasy Mini kit (Qiagen) according to manufacturer's specifications and genomic RNA was removed using an RNase-free DNase on-column treatment (Qiagen).
  • ELISA plates (Nunc) were coated with 1 pg/mL ⁇ -galactosidase overnight at 4°C. Excess antigen was washed off before blocking with PBS with 1 % BSA for one hour at room temperature. Serial dilutions of serum were added to the plates and incubated for one hour at room temperature before washing.
  • VpreBJX5 common light chain mice demonstrated fewer peripheral B cells, of which about 1 -2% express the engineered human light chain region (data not shown).
  • the expression levels of the VK1 - 39JK5 and VK3-20JK1 rearranged human light chain regions from the endogenous ⁇ light chain locus were elevated in comparison to an endogenous ⁇ light chain locus containing a complete replacement of mouse VK and JK gene segments with human VK and JK gene segments (FIG. 5A, 5B and 5C).
  • the expression levels of the ⁇ ⁇ rearranged human light chain region demonstrated similar high expression from the endogenous ⁇ light chain locus in both heterozygous and homozygous mice (data not shown). This demonstrates that in direct competition with the mouse ⁇ , ⁇ , or both endogenous light chain loci, a single rearranged human V L /JL sequence can yield better than wild type level expression from the endogenous ⁇ light chain locus and give rise to normal splenic and blood B cell frequency.
  • an engineered ⁇ light chain locus having either a human VK1 -39JK5 or human VK3-20JK1 sequence was well tolerated by the mice and appear to function in wild type fashion by representing a substantial portion of the light chain repertoire in the humoral component of the immune response (FIG 6A and 6B).
  • mice expressing a single rearranged human germline light chain Breeding of mice expressing a single rearranged human germline light chain
  • This Example describes several other genetically modified mouse strains that can be bred to any one of the common light chain mice described herein to create multiple genetically modified mouse strains harboring multiple genetically modified immunoglobulin loci.
  • Endogenous Ig Knockout mice bearing one of the rearranged human germline light chain regions are bred to another mouse containing a deletion in the endogenous ⁇ light chain locus. In this manner, the progeny obtained will express, as their only light chain, the rearranged human germline light chain region as described in Example 2. Breeding is performed by standard techniques recognized in the art and, alternatively, by a commercial breeder (e.g., The Jackson Laboratory). Mouse strains bearing an engineered light chain locus and a deletion of the endogenous ⁇ light chain locus are screened for presence of the unique light chain region and absence of endogenous mouse ⁇ light chains.
  • mice bearing an engineered human germline light chain locus are bred with mice that contain a replacement of the endogenous mouse heavy chain variable gene locus with the human heavy chain variable gene locus (see US 6,596,541 ; the VELOC IMMUNE® mouse, Regeneron Pharmaceuticals, Inc.).
  • the VELOCIMMUNE® mouse comprises a genome comprising human heavy chain variable regions operably linked to endogenous mouse constant region loci such that the mouse produces antibodies comprising a human heavy chain variable region and a mouse heavy chain constant region in response to antigenic stimulation.
  • the DNA encoding the variable regions of the heavy chains of the antibodies is isolated and operably linked to DNA encoding the human heavy chain constant regions. The DNA is then expressed in a cell capable of expressing the fully human heavy chain of the antibody.
  • mice bearing a replacement of the endogenous mouse V H locus with the human VH locus and a single rearranged human germline V L region at the endogenous light chain locus are obtained.
  • Reverse chimeric antibodies containing somatically mutated heavy chains (human V H and mouse C H ) with a single human light chain (human V L and mouse C L ) are obtained upon immunization with an antigen of interest.
  • V H and V L nucleotide sequences of B cells expressing the antibodies are identified and fully human antibodies are made by fusion the V H and V L nucleotide sequences to human C H and C L nucleotide sequences in a suitable expression system.
  • mice After breeding mice that contain the engineered human light chain region to various desired strains containing modifications and deletions of other endogenous Ig loci (as described in Example 4), selected mice can be immunized with an antigen of interest.
  • a VELOCIMMUNE® mouse containing one of the single rearranged human germline light chain regions is challenged with an antigen, and lymphatic cells (such as B-cells) are recovered from serum of the animals.
  • lymphatic cells such as B-cells
  • the lymphatic cells are fused with a myeloma cell line to prepare immortal hybridoma cell lines, and such hybridoma cell lines are screened and selected to identify hybridoma cell lines that produce antibodies containing human heavy chain variables and a rearranged human germline light chains which are specific to the antigen used for immunization.
  • DNA encoding the variable regions of the heavy chains and the light chain are isolated and linked to desirable isotypic constant regions of the heavy chain and light chain.
  • the single light chain of each antibody may be somatically mutated. This adds additional diversity to the antigen-specific repertoire comprising a single light chain and diverse heavy chain sequences.
  • the resulting cloned antibody sequences are subsequently expressed in a cell, such as a CHO cell.
  • DNA encoding the antigen-specific chimeric antibodies or the variable domains of the light and heavy chains are identified directly from antigen-specific lymphocytes.
  • high affinity chimeric antibodies are isolated having a human variable region and a mouse constant region.
  • the antibodies are characterized and selected for desirable characteristics, including affinity, selectivity, epitope, etc.
  • the mouse constant regions are replaced with a desired human constant region to generate the fully human antibody containing a somatically mutated human heavy chain and a single light chain derived from a rearranged human germline light chain region of the invention.
  • Suitable human constant regions include, for example wild type or modified lgG1 or lgG4.
  • Antigen E Two to three micrograms of Antigen E are mixed with 10 pg of CpG oligonucleotide (Cat # tlrl-modn - ODN1826 oligonucleotide ; InVivogen, San Diego, CA) and 25 pg of Adju-Phos (Aluminum phosphate gel adjuvant, Cat# H-71639-250; Brenntag Biosector, Frederikssund, Denmark) prior to injection. A total of six injections are given prior to the final antigen recall, which is given 3-5 days prior to sacrifice. Bleeds after the 4th and 6th injection are collected and the antibody immune response is monitored by a standard antigen-specific immunoassay.
  • CpG oligonucleotide Cat # tlrl-modn - ODN1826 oligonucleotide ; InVivogen, San Diego, CA
  • Adju-Phos Alluminum phosphate gel adjuvant, Cat# H-71639-
  • splenocytes are harvested and fused with mouse myeloma cells to preserve their viability and form hybridoma cell lines.
  • the hybridoma cell lines are screened and selected to identify cell lines that produce Antigen E-specific common light chain antibodies.
  • anti-Antigen E-specific common light chain antibodies i.e., antibodies possessing human heavy chain variable domains, the same human light chain variable domain, and mouse constant domains.
  • anti-Antigen E common light chain antibodies are isolated directly from antigen-positive B cells without fusion to myeloma cells, as described in U.S.
  • nucleic acids encoding heavy chain antibody variable regions were cloned and sequenced. From the nucleic acid sequences and predicted amino acid sequences of the antibodies, gene usage was identified for the heavy chain variable region (HCVR) of selected common light chain antibodies obtained from immunized
  • mice containing either the engineered human VK1-39JK5 light chain or engineered human VK3-20JK1 light chain region. Results are shown in Tables 5 and 6, which demonstrate that mice according to the invention generate antigen-specific common light chain antibodies from a variety of human heavy chain gene segments, due to a variety of rearrangements, when employing either a mouse that expresses a light chain from only a human VK1-39- or a human VK3-20-derived light chain.
  • Human V H gene segments of the 2, 3, 4, and 5 families rearranged with a variety of human D H segments and human J H segments to yield antigen-specific antibodies.
  • microspheres at a concentration of 20 g/mL in MES buffer. The mixture was incubated for two hours at room temperature followed by bead deactivation with 1 M Tris pH 8.0 followed by washing in PBS with 0.05% (v/v) Tween-20. The beads were then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 2% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO). In a 96-well filter plate, supernatants containing Antigen E-specific common light chain antibodies, were diluted 1 :15 in buffer. A negative control containing a mock supernatant with the same media components as for the antibody supernatant was prepared.
  • PBS Irvine Scientific, Santa Ana, CA
  • BSA Sigma-Aldrich Corp., St. Louis, MO
  • Antigen E- labeled beads were added to the supernatants and incubated overnight at 4°C.
  • Biotinylated- Ligand Y protein was added to a final concentration of 0.06 nM and incubated for two hours at room temperature.
  • Detection of biotinylated-Ligand Y bound to Antigen E-myc-myc-6His labeled beads was determined with R-Phycoerythrin conjugated to Streptavidin (Moss Inc, Pasadena, MD) followed by measurement in a LUMINEXTM flow cytometry-based analyzer.
  • Background Mean Fluorescence Intensity (MFI) of a sample without Ligand Y was subtracted from all samples. Percent blocking was calculated by division of the background- subtracted MFI of each sample by the adjusted negative control value, multiplying by 100 and subtracting the resulting value from 100.
  • MFI Green Fluorescence Intensity
  • Ligand Y was amine-coupled to carboxylated microspheres at a concentration of 20 g/mL diluted in MES buffer. The mixture and incubated two hours at room temperature followed by deactivation of beads with 1 M Tris pH 8 then washing in PBS with 0.05% (v/v) Tween-20. The beads were then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 2% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO). In a 96-well filter plate, supernatants containing Antigen E-specific common light chain antibodies were diluted 1 :15 in buffer.
  • a negative control containing a mock supernatant with the same media components as for the antibody supernatant was prepared.
  • a biotinylated-Antigen E- mmH was added to a final concentration of 0.42 nM and incubated overnight at 4°C.
  • Ligand Y-labeled beads were then added to the antibody/Antigen E mixture and incubated for two hours at room temperature. Detection of biotinylated-Antigen E-mmH bound to Ligand Y- beads was determined with R-Phycoerythrin conjugated to Streptavidin (Moss Inc,
  • Tables 7 and 8 show the percent blocking for all 98 anti-Antigen E common light chain antibodies tested in both LUMINEXTM assays. ND: not determined under current experimental conditions.
  • Ligand Y was coated onto 96-well plates at a concentration of 2 Mg/mL diluted in PBS and incubated overnight followed by washing four times in PBS with 0.05% Tween-20. The plate was then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 0.5% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO) for one hour at room temperature. In a separate plate, supernatants containing anti-Antigen E common light chain antibodies were diluted 1 : 10 in buffer. A mock supernatant with the same components of the antibodies was used as a negative control. Antigen E-mmH (described above) was added to a final concentration of 0.150 nM and incubated for one hour at room temperature. The
  • Antigen E-mmH mixture was then added to the plate containing Ligand Y and incubated for one hour at room temperature. Detection of Antigen E-mmH bound to Ligand Y was determined with Horse-Radish Peroxidase (HRP) conjugated to anti-Penta-His antibody (Qiagen, Valencia, CA) and developed by standard colorimetric response using tetramethylbenzidine (TMB) substrate (BD Biosciences, San Jose, CA) neutralized by sulfuric acid. Absorbance was read at OD450 for 0.1 sec. Background absorbance of a sample without Antigen E was subtracted from all samples. Percent blocking was calculated by division of the background-subtracted MFI of each sample by the adjusted negative control value, multiplying by 100 and subtracting the resulting value from 100.
  • HRP Horse-Radish Peroxidase
  • TMB tetramethylbenzidine
  • Tables 9 and 10 show the percent blocking for all 98 anti-Antigen E common light chain antibodies tested in the ELISA assay. ND: not determined under current experimental conditions.
  • K D Equilibrium dissociation constants for selected antibody supernatants were determined by SPR (Surface Plasmon Resonance) using a BIACORETM T100 instrument (GE Healthcare). All data was obtained using HBS-EP (10mM Hepes, 150mM NaCI, 0.3mM EDTA, 0.05% Surfactant P20, pH 7.4) as both the running and sample buffers, at 25°C. Antibodies were captured from crude supernatant samples on a CM5 sensor chip surface previously derivatized with a high density of anti-human Fc antibodies using standard amine coupling chemistry.
  • the affinity data is consistent with the common light chain antibodies resulting from the combinatorial association of rearranged variable domains described in Tables 5 and 6 being high-affinity, clonally selected, and somatically mutated. Coupled with data previously shown, the common light chain antibodies described in Tables 5 and 6 comprise a collection of diverse, high-affinity antibodies that exhibit specificity for one or more epitopes on Antigen E.
  • Selected anti-Antigen E common light chain antibodies were tested for their ability to bind to the ECD of Antigen E and Antigen E ECD variants, including the
  • cynomolgous monkey ortholog (Mf Antigen E), which differs from the human protein in approximately 10% of its amino acid residues; a deletion mutant of Antigen E lacking the last 10 amino acids from the C-terminal end of the ECD (Antigen E-ACT); and two mutants containing an alanine substitution at suspected locations of interaction with Ligand Y
  • Antigen E-Ala1 and AntigenE-Ala2 The Antigen E proteins were produced in CHO cells and each contained a myc-myc-His C-terminal tag.
  • Antigen E ECD protein or variant protein (described above) from 1 mL of culture medium was captured by incubation for 2 hr at room
  • the anti-Antigen E common light chain antibody supernatants exhibited high specific binding to the beads linked to Antigen E-ECD.
  • the negative control mock supernatant resulted in negligible signal ( ⁇ 10 MFI) when combined with the Antigen E-ECD bead sample, whereas the supernatants containing anti-Antigen E common light chain antibodies exhibited strong binding signal (average MFI of 2627 for 98 antibody supernatants; MFI > 500 for 91/98 antibody samples).
  • Heavy chains of selected antigen-specific common light chain antibodies were tested for binding to Antigen E after repairing the heavy chains with either a germline VK1 - 39JK5 or a germline VK3-20JK1 engineered light chain (as described in Example 1 ).
  • VK1 -39JK5 and VK3-20JK1 247 heavy chains of Antigen E-specific common light chain antibodies (VK1 -39JK5 and VK3-20JK1 ) were transfected with either a germline VK1 -39 or a germline V 3-20 engineered light chain and rescreened for binding to Antigen E by a LUMINEXTM assay (as described in Example 7 and Example 1 0). Binding to Antigen E was confirmed by BIACORETM (as described in Example 9). The results are shown in Table 1 5.
  • VELCOIMMUNE® mice (e.g., US 6,596,541 and US 7, 1 05,348) were compiled with heavy and light chain sequences (>600) of common light chain antibodies obtained by a multi- antigen immunization scheme employing the engineered light chain mice (described above) to compare heavy chain gene segment usage and somatic hypermutation frequencies of the antibody chains.
  • Heavy Chain Gene Usage Heavy and light chain sequences obtained from VELOCIMMUNE® mice containing a replacement of the endogenous mouse heavy chain locus with human V H , D H , and J H gene segments and a replacement of the endogenous mouse K light chain locus with either the engineered germline VK1 -39JK5 human light chain region or the engineered germline VK3-20J 1 human light chain region (as described in Example 2) immunized with a human cell-surface receptor (Antigen E), a heterodimer of two human cell-surface glycoproteins (Antigen F), a human cytokine receptor (Antigen G) and a human tumor differentiation antigen (Antigen H) were analyzed for heavy chain gene segment usage and V H and J H gene segments were recorded. Results are shown in Tables 16 - 18. Percentages in Tables 16 - 18 represent rounded values and in some cases may not equal 100% when added together.
  • Table 16 sets forth the percent heavy chain family usage for antibodies from VELCOIMMUNE® mice (VI), antibodies from VELCOIMMUNE® mice having a cognate VK1- 39 light chain (VI - VK1-39), antibodies from VK1 -39 engineered light chain mice (VK1 -39), antibodies from VELCOIMMUNE® mice having a cognate VK3-20 light chain (VI - 3-20), and antibodies from 3-20 engineered light chain mice ( 3-20).
  • Table 17 sets forth the percent V H and JH gene usage for antibodies from VELCOIMMUNE® mice (VI), antibodies from VELCOIMMUNE® mice having a cognate VK1-39 light chain (VI - VK1-39), antibodies from VK1-39 engineered light chain mice ( 1-39), antibodies from VELCOIMMUNE® mice having a cognate 3-20 light chain (VI - 3-20), and antibodies from V 3-20 engineered light chain mice ( 3-20).
  • Table 18 sets forth the percent V H gene usage for antibodies from VK1-39 engineered light chain mice (VK1-39 Mice) from each immunization group (Antigens E, F, G and H) and the percent V H gene usage for antibodies from VK3-20 engineered light chain mice (VK3-20 Mice) from selected immunization groups (Antigens E and G).
  • V H family III subgroups V H 3-7, V H 3-9, V H 3-11 , V H 3-13, V H 3-20, V H 3-23, V H 3-30, V H 3-33 and V H 3-48.
  • Notable usage of other V H family subgroups was characterized by usage of V H 1-18, V H 1-69, V H 2-5, V H 4-59 and V H 6-1.
  • V H family III For antigens tested in VK3-20JK1 engineered light chain mice, heavy chain gene usage was characterized by a preponderance of V H family III, V H family IV and V H family V subgroups (V H 3-1 1 , V H 3-30, V H 3-33, V H 4-39, V H 4-59 and V H 5-51 ). Notable usage of other V H family subgroups was characterized by usage of V H 1-18, V H 1 -69, V H 2-70 and V H 6-1.
  • Somatic Hypermutation Frequency Heavy and light chains from antibodies raised in VELCOIMMUNE® mice and the engineered light chain mice (described above) were aligned to germline sequences according to the heavy and light chain gene usage demonstrated for each heavy and/or light chain. Amino acid changes for each framework region (FW) and complementarity determining region (CDR) for both heavy and light chain of each sequence were calculated. Results are shown in Tables 19 - 22. Percentages in Tables 21 - 24 represent rounded values and in some cases may not equal 100% when added together.
  • Table 19 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VELCOIMMUNE® mice, heavy chains of antibodies from VK1-39 engineered light chain mice ( VK1-39 Mice) and heavy chains of antibodies from VK3-20 engineered light chain mice (VK3-20 Mice).
  • Table 20 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of light chains of antibodies from VELCOIMMUNE® mice, the light chain of antibodies from VK1 -39 engineered mice (VK1 -39 Mice) and the light chain of antibodies from VK3-20 engineered mice (VK3-20 Mice).
  • Table 21 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VK1-39 engineered light chain mice (VK1 -39 Mice) for selected immunization groups (Antigens E, F and H).
  • Table 22 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VK3-20 engineered light chain mice (VK3-20 Mice) for selected immunization groups (Antigens E and G).

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Abstract

A genetically modified mouse is provided, wherein the mouse expresses an immunoglobulin light chain repertoire characterized by a limited number of light chain variable domains. Mice are provided that express just one or a few immunoglobulin light chain variable domains from a limited repertoire in their germline. Methods for making light chain variable regions in mice, including human light chain variable regions, are provided. Methods for making human variable regions suitable for use in multispecific binding proteins, e.g., bispecific antibodies, are provided.

Description

COMMON LIGHT CHAIN MOUSE
FIELD
[0001] A genetically modified mouse is provided that expresses antibodies having a common human variable/mouse constant light chain associated with diverse human variable/mouse constant heavy chains. A method for making a human bispecific antibody from human variable region gene sequences of B cells of the mouse is provided.
BACKGROUND
[0002] Antibodies typically comprise a homodimeric heavy chain component, wherein each heavy chain monomer is associated with an identical light chain. Antibodies having a heterodimeric heavy chain component (e.g., bispecific antibodies) are desirable as therapeutic antibodies. But making bispecific antibodies having a suitable light chain component that can satisfactorily associate with each of the heavy chains of a bispecific antibody has proved problematic.
[0003] In one approach, a light chain might be selected by surveying usage statistics for all light chain variable domains, identifying the most frequently employed light chain in human antibodies, and pairing that light chain in vitro with the two heavy chains of differing specificity.
[0004] In another approach, a light chain might be selected by observing light chain sequences in a phage display library (e.g., a phage display library comprising human light chain variable region sequences, e.g., a human scFv library) and selecting the most commonly used light chain variable region from the library. The light chain can then be tested on the two different heavy chains of interest.
[0005] In another approach, a light chain might be selected by assaying a phage display library of light chain variable sequences using the heavy chain variable sequences of both heavy chains of interest as probes. A light chain that associates with both heavy chain variable sequences might be selected as a light chain for the heavy chains.
[0006] In another approach, a candidate light chain might be aligned with the heavy chains' cognate light chains, and modifications are made in the light chain to more closely match sequence characteristics common to the cognate light chains of both heavy chains. If the chances of immunogenicity need to be minimized, the modifications preferably result in sequences that are present in known human light chain sequences, such that proteolytic processing is unlikely to generate a T cell epitope based on parameters and methods known in the art for assessing the likelihood of immunogenicity (i.e., in siiico as well as wet assays).
[0007] All of the above approaches rely on in vitro methods that subsume a number of a priori restraints, e.g., sequence identity, ability to associate with specific pre-selected heavy chains, etc. There is a need in the art for compositions and methods that do not rely on manipulating in vitro conditions, but that instead employ more biologically sensible approaches to making human epitope-binding proteins that include a common light chain.
SUMMARY
[0008] Genetically modified mice that express human immunoglobulin heavy and light chain variable domains, wherein the mice have a limited light chain variable repertoire, are provided. A biological system for generating a human light chain variable domain that associates and expresses with a diverse repertoire of affinity-matured human heavy chain variable domains is provided. Methods for making binding proteins comprising
immunoglobulin variable domains are provided, comprising immunizing mice that have a limited immunoglobulin light chain repertoire with an antigen of interest, and employing an immunoglobulin variable region gene sequence of the mouse in a binding protein that specifically binds the antigen of interest. Methods include methods for making human immunoglobulin heavy chain variable domains suitable for use in making multi-specific antigen-binding proteins.
[0009] Genetically engineered mice are provided that select suitable affinity-matured human immunoglobulin heavy chain variable domains derived from a repertoire of unrearranged human heavy chain variable region gene segments, wherein the affinity- matured human heavy chain variable domains associate and express with a single human light chain variable domain derived from one human light chain variable region gene segment. Genetically engineered mice that present a choice of two human light chain variable region gene segments are also provided.
[0010] Genetically engineered mice are provided that express a limited repertoire of human light chain variable domains, or a single human light chain variable domain, from a limited repertoire of human light chain variable region gene segments. The mice are genetically engineered to include a single unrearranged human light chain variable region gene segment (or two human light chain variable region gene segments) that rearranges to form a rearranged human light chain variable region gene (or two rearranged light chain variable region genes) that express a single light chain (or that express either or both of two light chains). The rearranged human light chain variable domains are capable of pairing with a plurality of affinity-matured human heavy chains selected by the mice, wherein the heavy chain variable regions specifically bind different epitopes.
[0011] Genetically engineered mice are provided that express a limited repertoire of human light chain variable domains, or a single human light chain variable domain, from a limited repertoire of human light chain variable region sequences. The mice are genetically engineered to include a single V/J human light chain sequence (or two V/J sequences) that express a variable region of a single light chain (or that express either or both of two variable regions). A light chain comprising the variable sequence is capable of pairing with a plurality of affinity-matured human heavy chains clonally selected by the mice, wherein the heavy chain variable regions specifically bind different epitopes.
[0012] In one aspect, a genetically modified mouse is provided that comprises a single human immunoglobulin light chain variable (VL) region gene segment that is capable of rearranging with a human J gene segment (selected from one or a plurality of JL segments) and encoding a human VL domain of an immunoglobulin light chain. In another aspect, the mouse comprises no more than two human VL gene segments, each of which is capable of rearranging with a human J gene segment (selected from one or a plurality of JL segments) and encoding a human VL domain of an immunoglobulin light chain.
[0013] In one embodiment, the single human VL gene segment is operably linked to a human JL gene segment selected from JK1 , JK2, JK3, JK4, and JK5, wherein the single human VL gene segment is capable of rearranging to form a sequence encoding a light chain variable region gene with any of the one or more human JL gene segments.
[0014] In one embodiment, the genetically modified mouse comprises an
immunoglobulin light chain locus that does not comprise an endogenous mouse VL gene segment that is capable of rearranging to form an immunoglobulin light chain gene, wherein the VL locus comprises a single human VL gene segment that is capable of rearranging to encode a VL region of a light chain gene. In a specific embodiment, the human VL gene segment is a human VK1 -39JK5 gene segment or a human VK3-20JK1 gene segment. In one embodiment, the genetically modified mouse comprises a VL locus that does not comprise an endogenous mouse VL gene segment that is capable of rearranging to form an immunoglobulin light chain gene, wherein the VL locus comprises no more than two human VL gene segments that are capable of rearranging to encode a VL region of a light chain gene. In a specific embodiment, the no more than 2 human VL gene segments are a human VK1-39JK5 gene segment and a human VK3-20JK1 gene segment.
[0015] In one aspect, a genetically modified mouse is provided that comprises a single rearranged (V/J) human immunoglobulin light chain variable (VL) region (i.e., a VL/JL region) that encodes a human VL domain of an immunoglobulin light chain. In another aspect, the mouse comprises no more than two rearranged human VL regions that are capable of encoding a human VL domain of an immunoglobulin light chain.
[0016] In one embodiment, the VL region is a rearranged human WI-39/J sequence or a rearranged human VK3-20/J sequence. In one embodiment, the human JL segment of the rearranged VL/JL sequence is selected from JK1 , JK2, JK3, JK4, and JK5. In a specific embodiment, the VL region is a human VK1-39JK5 sequence or a human VK3-20JK1 sequence. In a specific embodiment, the mouse has both a human VK1-39JK5 sequence and a human VK3-20JK1 sequence.
[0017] In one embodiment, the human VL gene segment is operably linked to a human or mouse leader sequence. In one embodiment, the leader sequence is a mouse leader sequence. In a specific embodiment, the mouse leader sequence is a mouse VK3-7 leader sequence. In a specific embodiment, the leader sequence is operably linked to an unrearranged human VL gene segment. In a specific embodiment, the leader sequence is operably linked to a rearranged human VL/JL sequence.
[0018] In one embodiment, the VL gene segment is operably linked to an
immunoglobulin promoter sequence. In one embodiment, the promoter sequence is a human promoter sequence. In a specific embodiment, the human immunoglobulin promoter is a human VK3-15 promoter. In a specific embodiment, the promoter is operably linked to an unrearranged human VL gene segment. In a specific embodiment, the promoter is operably linked to a rearranged human VL/JL sequence.
[0019] In one embodiment, the light chain locus comprises a leader sequence flanked 5' (with respect to transcriptional direction of a VL gene segment) with a human
immunoglobulin promoter and flanked 3' with a human VL gene segment that rearranges with a human J segment and encodes a VL domain of a reverse chimeric light chain comprising an endogenous mouse light chain constant region (CL). In a specific
embodiment, the VL gene segment is at the mouse VK locus, and the mouse CL is a mouse
[0020] In one embodiment, the light chain locus comprises a leader sequence flanked 5' (with respect to transcriptional direction of a VL gene segment) with a human
immunoglobulin promoter and flanked 3' with a rearranged human VL region (VL/JL sequence) and encodes a VL domain of a reverse chimeric light chain comprising an endogenous mouse light chain constant region (CL). In a specific embodiment, the rearranged human VL/JL sequence is at the mouse kappa (κ) locus, and the mouse CL is a mouse CK.
[0021] In one embodiment, the VL locus of the modified mouse is a κ light chain locus, and the κ light chain locus comprises a mouse κ intronic enhancer, a mouse κ 3' enhancer, or both an intronic enhancer and a 3' enhancer.
[0022] In one embodiment, the mouse comprises a nonfunctional immunoglobulin lambda (λ) light chain locus. In a specific embodiment, the λ light chain locus comprises a deletion of one or more sequences of the locus, wherein the one or more deletions renders the λ light chain locus incapable of rearranging to form a light chain gene. In another embodiment, all or substantially all of the VL gene segments of the λ light chain locus are deleted.
[0023] In one embodiment, mouse makes a light chain that comprises a somatically mutated VL domain derived from a human VL gene segment. In one embodiment, the light chain comprises a somatically mutated VL domain derived from a human VL gene segment, and a mouse CK region. In one embodiment, the mouse does not express a λ light chain.
[0024] In one embodiment, the genetically modified mouse is capable of somatically hypermutating the human VL region sequence. In a specific embodiment, the mouse comprises a cell that comprises a rearranged immunoglobulin light chain gene derived from a human VL gene segment that is capable of rearranging and encoding a VL domain, and the rearranged immunoglobulin light chain gene comprises a somatically mutated VL domain.
[0025] In one embodiment, the mouse comprises a cell that expresses a light chain comprising a somatically mutated human VL domain linked to a mouse CK, wherein the light chain associates with a heavy chain comprising a somatically mutated VH domain derived from a human VH gene segment and wherein the heavy chain comprises a mouse heavy chain constant region (CH). In a specific embodiment, the heavy chain comprises a mouse CH1 , a mouse hinge, a mouse CH2, and a mouse CH3. In a specific embodiment, the heavy chain comprises a human CH1 , a hinge, a mouse CH2, and a mouse CH3.
[0026] In one embodiment, the mouse comprises a replacement of endogenous mouse VH gene segments with one or more human VH gene segments, wherein the human VH gene segments are operably linked to a mouse CH region gene, such that the mouse rearranges the human VH gene segments and expresses a reverse chimeric immunoglobulin heavy chain that comprises a human VH domain and a mouse CH. In one embodiment, 90-100% of unrearranged mouse VH gene segments are replaced with at least one unrearranged human VH gene segment. In a specific embodiment, all or substantially all of the endogenous mouse VH gene segments are replaced with at least one unrearranged human VH gene segment. In one embodiment, the replacement is with at least 19, at least 39, or at least 80 or 81 unrearranged human VH gene segments. In one embodiment, the replacement is with at least 12 functional unrearranged human VH gene segments, at least 25 functional unrearranged human VH gene segments, or at least 43 functional unrearranged human VH gene segments. In one embodiment, the mouse comprises a replacement of all mouse DH and JH segments with at least one unrearranged human DH segment and at least one unrearranged human JH segment. In one embodiment, the at least one unrearranged human DH segment is selected from 1-1 , D1-7, 1-26, 2-8, 2-15, 3-3, 3-10, 3-16, 3-22, 5-5, 5- 12, 6-6, 6-13, 7-27, and a combination thereof. In one embodiment, the at least one unrearranged human JH segment is selected from 1 , 2, 3, 4, 5, 6, and a combination thereof. In a specific embodiment, the one or more human VH gene segment is selected from a 1 -2, 1-8, 1 -24, 1-69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human VH gene segment, and a combination thereof.
[0027] In one embodiment, the mouse comprises a B cell that expresses a binding protein that specifically binds an antigen of interest, wherein the binding protein comprises a light chain derived from a human VK1-39/JK5 rearrangement or a human VK3-20/JK1 rearrangement, and wherein the cell comprises a rearranged immunoglobulin heavy chain gene derived from a rearrangement of human VH gene segments selected from a 1-69, 2-5,
3- 13, 3-23, 3-30, 3-33, 3-53, 4-39, 4-59, and 5-51 gene segment. In one embodiment, the one or more human VH gene segments are rearranged with a human heavy chain JH gene segment selected from 1 , 2, 3, 4, 5, and 6. In one embodiment, the one or more human VH and JH gene segments are rearranged with a human DH gene segment selected from 1-1 , 1- 7, 1-26, 2-8, 2-15, 3-3, 3-10, 3-16, 3-22, 5-5, 5-12, 6-6, 6-13, and 7-27. In a specific embodiment, the light chain gene has 1 , 2, 3, 4, or 5 or more somatic hypermutations.
[0028] In one embodiment, the mouse comprises a B cell that comprises a rearranged immunoglobulin heavy chain variable region gene sequence comprising a VH/DH/JH region selected from 2-5/6-6/1 , 2-5/3-22/1 , 3-13/6-6/5, 3-23/2-8/4, 3-23/3-3/4, 3-23/3-10/4, 3-23/6- 6/4, 3-23/7-27/4, 3-30/1-1/4, 3-30/1-7/4, 3-30/3-3/3, 3-30/3-3/4, 3-30/3-22/5, 3-30/5-5/2, 3- 30/5-12/4, 3-30/6-6/1 , 3-30/6-6/3, 3-30/6-6/4, 3-30/6-6/5, 3-30/6-13/4, 3-30/7-27/4, 3-30/7- 27/5, 3-30/7-27/6, 3-33/1 -7/4, 3-33/2-15/4, 4-39/1 -26/3, 4-59/3-16/3, 4-59/3-16/4, 4-59/3- 22/3, 5-51/3-16/6, 5-51/5-5/3, 5-51/6-13/5, 3-53/1-1/4, 1 -69/6-6/5, and 1-69/6-13/4. In a specific embodiment, the B cell expresses a binding protein comprising a human
immunoglobulin heavy chain variable region fused with a mouse heavy chain constant region, and a human immunoglobulin light chain variable region fused with a mouse light chain constant region.
[0029] In one embodiment, the rearranged human VL region is a human VK1-39JK5 sequence, and the mouse expresses a reverse chimeric light chain comprising (i) a VL domain derived from the human VL/JL sequence and (ii) a mouse CL; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse CH and (ii) a somatically mutated human VH domain derived from a human VH gene segment selected from a 1-2, 1-8, 1 -24, 1 -69, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53,
4- 31 , 4-39, 4-59, 5-51 , a 6-1 human VH gene segment, and a combination thereof. In one embodiment, the mouse expresses a light chain that is somatically mutated. In one embodiment the CL is a mouse CK. In a specific embodiment, the human VH gene segment is selected from a 2-5, 3-13, 3-23, 3-30, 4-59, 5-51 , and 1 -69 gene segment. In a specific embodiment, the somatically mutated human VH domain comprises a sequence derived from a DH segment selected from 1-1 , 1-7, 2-8, 3-3, 3-10, 3-16, 3-22, 5-5, 5-12, 6-6, 6-13, and 7- 27. In a specific embodiment, the somatically mutated human VH domain comprises a sequence derived from a JH segment selected from 1 , 2, 3, 4, 5, and 6. In a specific embodiment, the somatically mutated human VH domain is encoded by a rearranged human VH/DH/JH sequence selected from 2-5/6-6/1 , 2-5/3-22/1 , 3-13/6-6/5, 3-23/2-8/4, 3-23/3-3/4, 3- 23/3-10/4, 3-23/6-6/4, 3-23/7-27/4, 3-30/1-1/4, 3-30/1 -7/4, 3-30/3-3/4, 3-30/3-22/5, 3-30/5- 5/2, 3-30/5-12/4, 3-30/6-6/1 , 3-30/6-6/3, 3-30/6-6/4, 3-30/6-6/5, 3-30/6-13/4, 3-30/7-27/4, 3- 30/7-27/5, 3-30/7-27/6, 4-59/3-16/3, 4-59/3-16/4, 4-59/3-22/3, 5-51/5-5/3, 1-69/6-6/5, and 1- 69/6-13/4.
[0030] In one embodiment, the rearranged human VL region is a human VK3-20JK1 sequence, and the mouse expresses a reverse chimeric light chain comprising (i) a VL domain derived from the rearranged human VL/JL sequence, and (ii) a mouse CL; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse CH, and (ii) a somatically mutated human VH derived from a human VH gene segment selected from a 1 -2, 1-8, 1-24, 1 -69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human VH gene segment, and a combination thereof. In one embodiment, the mouse expresses a light chain that is somatically mutated. In one embodiment the CL is a mouse CK. In a specific embodiment, the human VH gene segment is selected from a 3-30, 3-33, 3-53, 4-39, and 5-51 gene segment. In a specific
embodiment, the somatically mutated human VH domain comprises a sequence derived from a DH segment selected from 1 -1 , 1 -7, 1-26, 2-15, 3-3, 3-16, and 6-13. In a specific embodiment, the somatically mutated human VH domain comprises a sequence derived from a JH segment selected from 3, 4, 5, and 6. In a specific embodiment, the somatically mutated human VH domain is encoded by a rearranged human VH/DH/JH sequence selected from 3-30/1 -1/4, 3-30/3-3/3, 3-33/1-7/4, 3-33/2-15/4, 4-39/1-26/3, 5-51/3-16/6, 5-51/6-13/5, and 3-53/1-1/4.
[0031] In one embodiment, the mouse comprises both a rearranged human VK1 -39J 5 sequence and a rearranged human VK3-20JK1 sequence, and the mouse expresses a reverse chimeric light chain comprising (i) a VL domain derived from the human VK1 -39JK5 sequence or the human VK3-20JK1 sequence, and (ii) a mouse CL; wherein the light chain is associated with a reverse chimeric heavy chain comprising (i) a mouse CH, and (ii) a somatically mutated human VH derived from a human VH gene segment selected from a 1-2, 1 -8, 1-24, 1 -69, 2-5, 3-7, 3-9, 3-11 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , a 6-1 human VH gene segment, and a combination thereof. In one embodiment, the mouse expresses a light chain that is somatically mutated. In one embodiment the CL is a mouse CK. [0032] In one embodiment, 90-100% of the endogenous unrearranged mouse VH gene segments are replaced with at least one unrearranged human VH gene segment. In a specific embodiment, all or substantially all of the endogenous unrearranged mouse VH gene segments are replaced with at least one unrearranged human VH gene segment. In one embodiment, the replacement is with at least 18, at least 39, at least 80, or 81 unrearranged human VH gene segments. In one embodiment, the replacement is with at least 12 functional unrearranged human VH gene segments, at least 25 functional unrearranged human VH gene segments, or at least 43 unrearranged human VH gene segments.
[0033] In one embodiment, the genetically modified mouse is a C57BL strain, in a specific embodiment selected from C57BL/A, C57BL/An, C57BL/GrFa, C57BL/KaLwN, C57BL/6, C57BL/6J, C57BL/6ByJ, C57BL/6NJ, C57BL/10, C57BL/10ScSn, C57BL/10Cr, and C57BL/Ola. In a specific embodiment, the genetically modified mouse is a mix of an aforementioned 129 strain and an aforementioned C57BL/6 strain. In another specific embodiment, the mouse is a mix of aforementioned 129 strains, or a mix of aforementioned BL/6 strains. In a specific embodiment, the 129 strain of the mix is a 129S6 (129/SvEvTac) strain.
[0034] In one embodiment, the mouse expresses a reverse chimeric antibody comprising a light chain that comprises a mouse CK and a somatically mutated human VL domain derived from a rearranged human VK1-39JK5 sequence or a rearranged human VK3-20JK1 sequence, and a heavy chain that comprises a mouse CH and a somatically mutated human VH domain derived from a human VH gene segment selected from a 1-2, 1- 8, 1-24, 1-69, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 3-53, 4-31 , 4-39, 4-59, 5-51 , and a 6-1 human VH gene segment, wherein the mouse does not express a fully mouse antibody and does not express a fully human antibody. In one embodiment the mouse comprises a κ light chain locus that comprises a replacement of endogenous mouse K light chain gene segments with the rearranged human V 1-39JK5 sequence or the rearranged human VK3-20JK1 sequence, and comprises a replacement of all or substantially all endogenous mouse VH gene segments with a complete or substantially complete repertoire of human VH gene segments.
[0035] In one aspect, a population of antigen-specific antibodies derived from a mouse as described herein is provided, wherein the antibodies comprise a light chain gene derived from a human VK1-39/JK5 rearrangement or a human VK3-20/JK1 rearrangement, and wherein the antibodies comprise a rearranged immunoglobulin heavy chain gene derived from a rearrangement of a human VH gene segment selected from a 1-2, 1-3, 1-8, 1-18, 1- 24, 1-46, 1-58, 1-69, 2-5, 2-26, 2-70, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-16, 3-20, 3-21 , 3-23, 3-30, 3-33, 3-43, 3-48, 3-53, 3-64, 3-72, 3-73, 4-31 , 4-34, 4-39, 4-59, 5-51 , and a 6-1 human VH gene segment. In one embodiment, the one or more human VH gene segments are rearranged with a human heavy chain JH gene segment selected from 1 , 2, 3, 4, 5, and 6. In a specific embodiment, the light chain has 1 , 2, 3, 4, or 5 or more somatic hypermutations.
[0036] In one embodiment, the light chain has 1 , 2, 3, or 4 somatic hypermutations. In one embodiment, the light chain gene has 1 or 2 mutations. In various embodiments, the light chain gene is capable of incurring multiple mutations along its sequence.
[0037] In one embodiment, the light chain is derived from a human V 1 -39/JK5 rearrangement and the light chain has at least one or no more than four somatic
hypermutations. In one embodiment, the light chain comprises at least two somatic hypermutations. In one embodiment, the light chain comprises at least three somatic hypermutations. In one embodiment, the light chain comprises at least four somatic hypermutations. In a specific embodiment, the mutations are present in one or more framework regions (FWs) of the light chain. In a specific embodiment, the mutations are present in one or more complementarity determining regions (CDRs) of the light chain. In a specific embodiment, the mutations are present in one or more FWs and/or one or more CDRs of the light chain. In various embodiments, the framework regions are selected from framework 1 (FW1), framework 2 (FW2), framework 3 (FW3), and/or a combination thereof. In various embodiments, the CDRs are selected from CDR1 , CDR2, CDR3, and/or a combination thereof.
[0038] In one embodiment, the heavy chain comprises at least one mutation in one or more FWs or one or more CDRs. In one embodiment, the heavy chain comprises at least one mutation in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least two mutations in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least three mutations in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least four mutations in one or more FWs and one or more CDRs. In one embodiment, the heavy chain comprises at least five or more than five mutations in one or more FWs and one or more CDRs; in a specific embodiment, the heavy chain comprises at least five or more than five mutations in two FWs; in a specific embodiment, the heavy chain comprises at least five or more than five mutations in one FW and one CDR.
[0039] In one embodiment, the light chain is derived from a human VK1-39/JK5
rearrangement and about 9% of the VKl-39/JK5-derived light chains have at least one mutation present in FW1 ; in one embodiment, at least 9% of the light chains comprise one mutation present in FW1. In one embodiment, the light chain is derived from a human VK1- 39/JK5 rearrangement and about 25% of the VKl-39/J 5-derived light chains have at least one or no more than two mutations present in CDR1 ; in one embodiment, at least 19% of the light chains have one mutation present in CDR1 ; in one embodiment, at least 5% of the light chains have two mutations present in CDR1.
[0040] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 20% of the VKl -39/jK5-derived light chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 17% of the light chains have one mutation present in FW2; in one embodiment, at least 1 % of the light chains have two mutations present in FW2; in one embodiment, at least 1 % of the light chains have three mutations present in FW2.
[0041] In one embodiment, the light chain is derived from a human VK1-39/J 5 rearrangement and about 10% of the VKl-39/JK5-derived light chains have at least one or no more than two mutations present in CDR2; in one embodiment, at least 10% of the light chains have one mutation present in CDR2; in one embodiment, at least 1 % of the light chains have two mutations present in CDR2.
[0042] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 29% of the VKl-39/JK5-derived light chains have at least one or no more than four mutations present in FW3; in one embodiment, at least 21 % of the light chains have one mutation present in FW3; in one embodiment, at least 5% of the light chains have two mutations present in FW3; in one embodiment, at least 2% of the light chains have three mutations present in FW3; in one embodiment, at least 2% of the light chains have four mutations present in FW3.
[0043] In one embodiment, the light chain is derived from a human VK1 -39/JK5 rearrangement and about 37% of the VKl-39/JK5-derived light chains have at least one or no more than four mutations present in CDR3; in one embodiment, at least 27% of the light chains have one mutation present in CDR3; in one embodiment, at least 8% of the light chains have two mutations present in CDR3; in one embodiment, at least 1 % of the light chains have three mutations present in CDR3; in one embodiment, at least 1 % of the light chains have four mutations present in CDR3.
[0044] In one embodiment, a population of antigen-specific antibodies derived from a mouse as described herein is provided, wherein the antibodies comprise a light chain derived from a human VK1 -39/JK5 rearrangement and about 9% of the Vi 1-39/JK5-derived light chains have one or more mutations present in FW1 , about 25% of the VK1-39/JK5- derived light chains have one or more mutations present in CDR1 , about 20% of the VK1- 39/JK5-derived light chains have one or more mutations present in F 2, about 10% of the Vi 1 -39/jK5-derived light chains have one or more mutations present in CDR2, about 29% of the VKl-39/JK5-derived light chains have one or more mutations present in FW3, and about 37% of the Vi 1 -39/JK5-derived light chains have one or more mutations present in CDR3. [0045] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 35% of the heavy chains have at least one mutation present in FW1 ; in one embodiment, at least 25% of the heavy chains have one mutation present in FW1 ; in one embodiment, at least 9 % of the heavy chains have two mutations present in FW1 ; in one embodiment, at least 1 % of the heavy chains have three mutations present in FW1 ; in one embodiment, at least 1 % of the heavy chains have more than five mutations present in FW1.
[0046] In one embodiment, the light chain is derived from a human VK1 -39/J 5 rearrangement and about 92% of the heavy chains have at least one or no more than four mutations present in CDR1 ; in one embodiment, at least 92% of the heavy chains have at least one, at least two, at least three, or at least four mutations present in CDR1 ; in one embodiment, at least 26% of the heavy chains have one mutation present in CDR1 ; in one embodiment, at least 44% of the heavy chains have two mutations present in CDR1 ; in one embodiment, at least 19% of the heavy chains have three mutations present in CDR1 ; in one embodiment, at least 3% of the heavy chains have four mutations present in CDR1.
[0047] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 66% of the heavy chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 66% of the heavy chains have at least one, at least two, or at least three mutations present in FW2; in one embodiment, at least 35% of the heavy chains have one mutation present in FW2; in one embodiment, at least 23% of the heavy chains have two mutations present in FW2; in one embodiment, at least 8% of the heavy chains have three mutations present in FW2.
[0048] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 70% of the heavy chains have at least one or no more than four mutations present in CDR2; in one embodiment, at least 70% of the heavy chains have at least two, at least three, or at least four mutations present in CDR2; in one embodiment, at least 34% have one mutation present in CDR2; in one embodiment, at least 20% of the heavy chains have two mutations present in CDR2; in one embodiment, at least 12% of the heavy chains have three mutations present in CDR2; in one embodiment, at least 5% of the heavy chains have four mutations present in CDR2.
[0049] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 91 % of the heavy chains have at least one or up to five or more mutations present in FW3; in one embodiment, at least 91 % of the heavy chains have at least two, at least three, at least four, or at least five or more mutations present in F 3; in one embodiment, at least 19% of the heavy chains have one mutation present in FW3; in one embodiment, at least 33% of the heavy chains have two mutations present in FW3; in one embodiment, at least 22% of the heavy chains have three mutations present in FW3; in one embodiment, at least 1 1 % of the heavy chains have four mutations present in FW3; in one embodiment, at least 7% of the heavy chains have five or more mutations present in FW3.
[0050] In one embodiment, the light chain is derived from a human VK1-39/JK5 rearrangement and about 63% of the heavy chains have at least one or no more than two mutations present in CDR3; in one embodiment, at least 63% of the heavy chains have at one mutation present in CDR3; in one embodiment, at least 54% of the heavy chains have one mutation present in CDR3; in one embodiment, at least 9% of the heavy chains have two mutations present in CDR3.
[0051] In one embodiment, a population of antigen-specific antibodies derived from a mouse as described herein is provided, wherein the antibodies comprise a light chain derived from a human VK1-39/JK5 rearrangement and at least 35% of the heavy chains have one or more mutations present in FW1 , about 92% of the heavy chains have one or more mutations present in CDR1 , about 66% of the heavy chains have one or more mutations present in FW2, about 70% of the heavy chains have one or more mutations present in CDR2, about 91 % of the heavy chains have one or more mutations present in FW3, and about 63% of the heavy chains have one or more mutations present in CDR3.
[0052] In one embodiment, the light chain is derived from a human V 3-20/JK1 rearrangement and the light chain gene has at least one or no more than two somatic hypermutations; in one embodiment, the light chain gene has at least two, at least three, at least four or more somatic hypermutations. In a specific embodiment, the mutations are present in one or more framework regions of the light chain. In a specific embodiment, the mutations are present in one or more CDR regions of the light chain. In a specific embodiment, the mutations are present in one or more framework regions and/or one or more CDR regions of the light chain. In various embodiments, the framework regions are selected from framework 1 (FW1), framework 2 (FW2), framework 3 (FW3), and/or a combination thereof.
[0053] In one embodiment, the light chain is derived from a human VK3-20/J 1 rearrangement and about 10% of the VK3-20/JK1 -derived light chains have at least one mutation present in FW1 ; in one embodiment, at least 10% of the light chains have one mutation in FW1.
[0054] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 53% of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in CDR1 ; in one embodiment, at least 27% of the light chains have one or more mutations in CDR1 ; in one embodiment, about 54% of the light chains have one or two mutations present in CDR1 ,
[0055] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 6% of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in FW2; in one embodiment, at least 6% of light chains have at least one mutation present in FW2; in one embodiment, at least 3% of the light chains have one mutation present in FW2; in one embodiment, at least 3% of the light chains have two mutations present in FW2.
[0056] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and at least about 3% of the VK3-20/JK1 -derived light chains have at least one mutation present in CDR2; in one embodiment, at least 3% of the light chains have one mutation in CDR2.
[0057] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 17% or more of the VK3-20/JK1 -derived light chains have at least one or no more than two mutations present in FW3; in one embodiment, at least 20% of the light chain have one mutation present in FW3; in one embodiment, at least 17% of the light chains have two mutations present in FW3.
[0058] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and at least 43% of the VK3-20/JK1 -derived light chains have at least one mutation present in CDR3; in one embodiment, at least 43% of the light chains have one mutation in CDR3.
[0059] In one embodiment, a population of antigen-specific antibodies derived from a mouse as described herein is provided, wherein the antibodies comprise a light chain derived from a human VK3-20/J 1 rearrangement and about 10% of the VK3-20/J 1 -derived light chains have one or more mutations present in at least, about 53% of the VK3-20/JK1- derived light chains have one or more mutations present in CDR1 , about 6% of the VK3- 20/JK1 -derived light chains have one or more mutations present in FW2, about 3% of the VK3-20/JK1 -derived light chains have one or more mutations present in CDR2, about 37% of the VK3-20/JK1 -derived light chains have one or more mutations present in FW3, and about 43% of the VK3-20/JK1 -derived light chains have one or more mutations present in CDR3.
[0060] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 43% of the heavy chains have at least one or no more than two mutations present in FW1 ; in one embodiment, at least 41 % of the heavy chains have at least one mutation present in FW1 ; in one embodiment, about 41 % of the heavy chains have one mutation present in FW1 ; in one embodiment, about 2% of the heavy chains have two mutations present in FW1. [0061] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 92% of the heavy chains have at least one or no more than four mutations present in CDR1 ; in one embodiment, at least 43% of heavy chains have at least one mutation present in CDR1 ; in one embodiment, at least 25% of heavy chains have at least two mutations present in CDR1 ; in one embodiment, at least 15% of heavy chains have at least 3 mutations present in CDR1 ; in one embodiment, at least 10% of heavy chains have 4 or more mutations present in CDR1.
[0062] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 46% of the heavy chains have at least one or no more than three mutations present in FW2; in one embodiment, at least 34% of heavy chains have at least one mutation present in FW2; in one embodiment, at least 10% of heavy chains have two or more mutations present in FW2; in one embodiment, at least 2% of heavy chains have three or more mutations present in FW2.
[0063] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 84% of the heavy chains have at least one or up to five or more than five mutations present in CDR2; in one embodiment, at least 39% of the heavy chains have one or more mutations present in CDR2; in one embodiment, at least 18% of the heavy chains have two or more mutations present in CDR2; in one embodiment, at least 21 % of the heavy chains have three or more mutations present in CDR2; in one embodiment, at least 3% of the heavy chains have four or more mutations present in CDR2; in one embodiment, at least 2% of the heavy chains have five or more mutations present in CDR2.
[0064] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 92% of the heavy chains have at least one or up to five or more than five mutations present in FW3; in one embodiment, at least 21 % of the light chains have at least one mutation present in FW3; in one embodiment, at least 20% of heavy chains have at least two mutations present in FW3; in one embodiment, at least 13% of the heavy chains have at least three mutations present in FW3; in one embodiment, at least 20% of the heavy chains have at least four mutations in FW3; in one embodiment, at least 18% of the heavy chains have at lest 5 mutations in FW3.
[0065] In one embodiment, the light chain is derived from a human VK3-20/JK1 rearrangement and about 7% of the heavy chains have at least one mutation present in CDR3; in one embodiment, about 7% of the heavy chains have one mutation in CDR3.
[0066] In one embodiment, a population of antigen-specific antibodies derived from a mouse as described herein is provided, wherein the antibodies comprise a light chain derived from a human VK3-20/JK1 rearrangement and about 43% of the heavy chains have one or more mutations present in FW1 , about 92% of the heavy chains have one or more mutations present in CDR1 , about 46% of the heavy chains have one or more mutations present in FW2, about 84% of the heavy chains have one or more mutations present in CDR2, about 92% of the heavy chains have one or more mutations present in FW3, and about 7% of the heavy chains have one or more mutations present in CDR3.
[0067] In one aspect, a mouse that expresses an immunoglobulin light chain from a rearranged immunoglobulin light chain sequence is provided, wherein the rearranged immunoglobulin light chain sequence is present in the germline of the mouse, wherein the immunoglobulin light chain comprises a human variable sequence. In one embodiment, the germline of the mouse comprises a rearranged immunoglobulin light chain sequence that is derived from the same V segment and the same J segment as all non-surrogate light chain sequences present in every B cell of the mouse that comprises a rearranged light chain sequence.
[0068] In one embodiment, the germline of the mouse lacks a functional unrearranged immunoglobulin light chain V gene segment. In one embodiment, the germline of the mouse lacks a functional unrearranged immunoglobulin light chain J gene segment.
[0069] In one embodiment, the germline of the mouse comprises no more than one, no more than two, or no more than three rearranged (V/J) light chain sequences.
[0070] In one embodiment, the rearranged V/J sequence comprises a κ light chain sequence. In a specific embodiment, the κ light chain sequence is a human κ light chain sequence. In a specific embodiment, the κ light chain sequence is selected from a human VK1 -39/J sequence, a human VK3-20/J sequence, and a combination thereof. In a specific embodiment, the light chain sequence is a human VK1-39/JK5 sequence. In a specific embodiment, the κ light chain sequence is a human V 3-20/JK1 sequence.
[0071] In one embodiment, the mouse further comprises in its germline a sequence selected from a mouse κ intronic enhancer 5' with respect to the rearranged immunoglobulin light chain sequence, a mouse κ 3' enhancer, and a combination thereof.
[0072] In one embodiment, the mouse comprises an unrearranged human VH gene segment, an unrearranged human DH gene segment, and an unrearranged human JH gene segment, wherein said VH, DH, and JH gene segments are capable of rearranging to form an immunoglobulin heavy chain variable gene sequence operably linked to a heavy chain constant gene sequence. In one embodiment, the mouse comprises a plurality of human VH, DH, and JH gene segments. In a specific embodiment, the human VH, DH, and JH gene segments replace endogenous mouse VH, DH, and JH gene segments at the endogenous mouse immunoglobulin heavy chain locus. In a specific embodiment, the mouse comprises a replacement of all or substantially all functional mouse VH, DH, and JH gene segments with all or substantially all functional human VH, DH, and JH gene segments. [0073] In one embodiment, the mouse expresses an immunoglobulin light chain that comprises a mouse constant sequence. In one embodiment, the mouse expresses an immunoglobulin light chain that comprises a human constant sequence.
[0074] In one embodiment, the mouse expresses an immunoglobulin heavy chain that comprises a mouse sequence selected from a CH1 sequence, a hinge sequence, a CH2 sequence, a CH3 sequence, and a combination thereof.
[0075] In one embodiment, the mouse expresses an immunoglobulin heavy chain that comprises a human sequence selected from a CH1 sequence, a hinge sequence, a CH2 sequence, a CH3 sequence, and a combination thereof.
[0076] In one embodiment, the rearranged immunoglobulin light chain sequence in the germline of the mouse is at an endogenous mouse immunoglobulin light chain locus. In a specific embodiment, the rearranged immunoglobulin light chain sequence in the germline of the mouse replaces all or substantially all mouse light chain V and J sequences at the endogenous mouse immunoglobulin light chain locus.
[0077] In one aspect, a mouse is provided that comprises a B cell population
characterized by each B cell that comprises a non-surrogate light chain sequence comprises a rearranged light chain gene that is derived from a single human V segment and a single human J segment, wherein the only light chain variable sequence in the germline of the mouse is a rearranged sequence derived from the single human V segment and the single human J segment, and wherein each B ell that comprises the rearranged light chain gene further comprises a gene encoding a cognate human heavy chain variable domain, and wherein the rearranged light chain gene comprises at least one, at least two, at least three, or at least four somatic hypermutations.
[0078] In one aspect, a pluripotent, induced pluripotent, or totipotent cell derived from a mouse as described herein is provided. In a specific embodiment, the cell is a mouse embryonic stem (ES) cell.
[0079] In one aspect, a tissue derived from a mouse as described herein is provided. In one embodiment, the tissue is derived from spleen, lymph node or bone marrow of a mouse as described herein.
[0080] In one aspect, a nucleus derived from a mouse as described herein is provided. In one embodiment, the nucleus is from a diploid cell that is not a B cell.
[0081] In one aspect, a mouse cell is provided that is isolated from a mouse as described herein. In one embodiment, the cell is an ES cell. In one embodiment, the cell is a lymphocyte. In one embodiment, the lymphocyte is a B cell. In one embodiment, the B cell expresses a chimeric heavy chain comprising a variable domain derived from a human gene segment; and a light chain derived from a rearranged human 1-39/J sequence, rearranged human VK3-20/J sequence, or a combination thereof; wherein the heavy chain variable domain is fused to a mouse constant region and the light chain variable domain is fused to a mouse or a human constant region.
[0082] In one aspect, a hybridoma is provided, wherein the hybridoma is made with a B cell of a mouse as described herein. In a specific embodiment, the B cell is from a mouse as described herein that has been immunized with an immunogen comprising an epitope of interest, and the B cell expresses a binding protein that binds the epitope of interest, the binding protein has a somatically mutated human VH domain and a mouse CH, and has a human VL domain derived from a rearranged human VK1 -39JK5 or a rearranged human VK3-20JK1 and a mouse CL.
[0083] In one aspect, a mouse embryo is provided, wherein the embryo comprises a donor ES cell that is derived from a mouse as described herein.
[0084] In one aspect, a targeting vector is provided, comprising, from 5' to 3' in transcriptional direction with reference to the sequences of the 5' and 3' mouse homology arms of the vector, a 5' mouse homology arm, a human or mouse immunoglobulin promoter, a human or mouse leader sequence, and a human VL region selected from a rearranged human VK1-39JK5 or a rearranged human VK3-20JK1 , and a 3' mouse homology arm. In one embodiment, the 5' and 3' homology arms target the vector to a sequence 5' with respect to an enhancer sequence that is present 5' and proximal to the mouse CK gene. In one embodiment, the promoter is a human immunoglobulin variable region gene segment promoter. In a specific embodiment, the promoter is a human VK3-15 promoter. In one embodiment, the leader sequence is a mouse leader sequence. In a specific embodiment, the mouse leader sequence is a mouse V 3-7 leader sequence.
[0085] In one aspect, a targeting vector is provided as described above, but in place of the 5' mouse homology arm the human or mouse promoter is flanked 5' with a site-specific recombinase recognition site (SRRS), and in place of the 3' mouse homology arm the human VL region is flanked 3' with an SRRS.
[0086] In one aspect, a reverse chimeric antibody made by a mouse as described herein, wherein the reverse chimeric antibody comprises a light chain comprising a human VL and a mouse CL, and a heavy chain comprising a human VH and a mouse CH.
[0087] In one aspect, a method for making an antibody is provided, comprising expressing in a single cell (a) a first VH gene sequence of an immunized mouse as described herein fused with a human CH gene sequence; (b) a VL gene sequence of an immunized mouse as described herein fused with a human CL gene sequence; and, (c) maintaining the cell under conditions sufficient to express a fully human antibody, and isolating the antibody. In one embodiment, the cell comprises a second VH gene sequence of a second immunized mouse as described herein fused with a human CH gene sequence, the first VH gene sequence encodes a VH domain that recognizes a first epitope, and the second VH gene sequence encodes a VH domain that recognizes a second epitope, wherein the first epitope and the second epitope are not identical.
[0088] In one aspect, a method for making an epitope-binding protein is provided, comprising exposing a mouse as described herein with an immunogen that comprises an epitope of interest, maintaining the mouse under conditions sufficient for the mouse to generate an immunoglobulin molecule that specifically binds the epitope of interest, and isolating the immunoglobulin molecule that specifically binds the epitope of interest; wherein the epitope-binding protein comprises a heavy chain that comprises a somatically mutated human VH and a mouse CH, associated with a light chain comprising a mouse CL and a human VL derived from a rearranged human VK1-39JK5 or a rearranged human VK3-20JK1 .
[0089] In one aspect, a cell that expresses an epitope-binding protein is provided, wherein the cell comprises: (a) a human nucleotide sequence encoding a human VL domain that is derived from a rearranged human VK1 -39JK5 or a rearranged human VK3-20JK1 , wherein the human nucleotide sequence is fused (directly or through a linker) to a human immunoglobulin light chain constant domain cDNA sequence (e.g., a human κ constant domain DNA sequence); and, (b) a first human VH nucleotide sequence encoding a human VH domain derived from a first human VH nucleotide sequence, wherein the first human VH nucleotide sequence is fused (directly or through a linker) to a human immunoglobulin heavy chain constant domain cDNA sequence; wherein the epitope-binding protein recognizes a first epitope. In one embodiment, the epitope-binding protein binds the first epitope with a dissociation constant of lower than 1CT6 M, lower than 10"8 M, lower than 10"9 M, lower than 1 Cr10 M, lower than 10"11 M, or lower than 1 CT12 M.
[0090] In one embodiment, the cell comprises a second human nucleotide sequence encoding a second human VH domain, wherein the second human sequence is fused (directly or through a linker) to a human immunoglobulin heavy chain constant domain cDNA sequence, and wherein the second human VH domain does not specifically recognize the first epitope (e.g., displays a dissociation constant of, e.g., 10"6 M, 10"5 M, 10~4 M, or higher), and wherein the epitope-binding protein recognizes the first epitope and the second epitope, and wherein the first and the second immunoglobulin heavy chains each associate with an identical light chain of (a).
[0091] In one embodiment, the second VH domain binds the second epitope with a dissociation constant that is lower than 10"6 M, lower than 10"7 M, lower than 10"8 M, lower than 1 fJ9 M, lower than 10"10 M, lower than 10"11 M, or lower than 10"12 M.
[0092] In one embodiment, the epitope-binding protein comprises a first immunoglobulin heavy chain and a second immunoglobulin heavy chain, each associated with an identical light chain derived from a rearranged human VL region selected from a human VK1 -39JK5 or a human VK3-20JK1 , wherein the first immunoglobulin heavy chain binds a first epitope with a dissociation constant in the nanomolar to picomolar range, the second immunoglobulin heavy chain binds a second epitope with a dissociation constant in the nanomolar to picomolar range, the first epitope and the second epitope are not identical, the first immunoglobulin heavy chain does not bind the second epitope or binds the second epitope with a dissociation constant weaker than the micromolar range (e.g., the millimolar range), the second immunoglobulin heavy chain does not bind the first epitope or binds the first epitope with a dissociation constant weaker than the micromolar range (e.g., the millimolar range), and one or more of the VL, the VH of the first immunoglobulin heavy chain, and the VH of the second immunoglobulin heavy chain, are somatically mutated.
[0093] In one embodiment, the first immunoglobulin heavy chain comprises a protein A- binding residue, and the second immunoglobulin heavy chain lacks the protein A-binding residue.
[0094] In one embodiment, the cell is selected from CHO, COS, 293, HeLa, and a retinal cell expressing a viral nucleic acid sequence (e.g., a PERC.6™ cell).
[0095] In one aspect, a reverse chimeric antibody is provided, comprising a human VH and a mouse heavy chain constant domain, a human VL and a mouse light chain constant domain, wherein the antibody is made by a process that comprises immunizing a mouse as described herein with an immunogen comprising an epitope, and the antibody specifically binds the epitope of the immunogen with which the mouse was immunized. In one embodiment, the VL domain is somatically mutated. In one embodiment the VH domain is somatically mutated. In one embodiment, both the VL domain and the VH domain are somatically mutated. In one embodiment, the VL is linked to a mouse C domain.
[0096] In one aspect, a mouse is provided, comprising human VH gene segments replacing all or substantially all mouse VH gene segments at the endogenous mouse heavy chain locus; no more than one or two rearranged human light chain VL/JL sequences selected from a rearranged VK1 -39/J and a rearranged VK3-20/J or a combination thereof, replacing all mouse light chain gene segments; wherein the human heavy chain variable gene segments are linked to a mouse constant gene, and the rearranged human light chain sequences are linked to a human or mouse constant gene.
[0097] In one aspect, a mouse ES cell comprising a replacement of all or substantially all mouse heavy chain variable gene segments with human heavy chain variable gene segments, and no more than one or two rearranged human light chain VL/JL sequences, wherein the human heavy chain variable gene segments are linked to a mouse
immunoglobulin heavy chain constant gene, and the rearranged human light chain VL/JL sequences are linked to a mouse or human immunoglobulin light chain constant gene. In a specific embodiment, the light chain constant gene is a mouse constant gene.
[0098] In one aspect, an antigen-binding protein made by a mouse as described herein is provided. In a specific embodiment, the antigen-binding protein comprises a human immunoglobulin heavy chain variable region fused with a mouse constant region, and a human immunoglobulin light chain variable region derived from a 1-39 gene segment or a VK3-20 gene segment, wherein the light chain constant region is a mouse constant region.
[0099] In one aspect, a fully human antigen-binding protein made from an
immunoglobulin variable region gene sequence from a mouse as described herein is provided, wherein the antigen-binding protein comprises a fully human heavy chain comprising a human variable region derived from a sequence of a mouse as described herein, and a fully human light chain comprising a 1 -39 or a VK3-20. In one embodiment, the light chain variable region comprises one to five somatic mutations. In one embodiment, the light chain variable region is a cognate light chain variable region that is paired in a B cell of the mouse with the heavy chain variable region.
[00100] In one embodiment, the fully human antigen-binding protein comprises a first heavy chain and a second heavy chain, wherein the first heavy chain and the second heavy chain comprise non-identical variable regions independently derived from a mouse as described herein, and wherein each of the first and second heavy chains express from a host cell associated with a human light chain derived from a VK1-39 gene segment or a VK3- 20 gene segment. In one embodiment, the first heavy chain comprises a first heavy chain variable region that specifically binds a first epitope of a first antigen, and the second heavy chain comprises a second heavy chain variable region that specifically binds a second epitope of a second antigen. In a specific embodiment, the first antigen and the second antigen are different. In a specific embodiment, the first antigen and the second antigen are the same, and the first epitope and the second epitope are not identical; in a specific embodiment, binding of the first epitope by a first molecule of the binding protein does not block binding of the second epitope by a second molecule of the binding protein.
[00101] In one aspect, a fully human binding protein derived from a human
immunoglobulin sequence of a mouse as described herein comprises a first immunoglobulin heavy chain and a second immunoglobulin heavy chain, wherein the first immunoglobulin heavy chain comprises a first variable region that is not identical to a variable region of the second immunoglobulin heavy chain, and wherein the first immunoglobulin heavy chain comprises a wild type protein A binding determinant, and the second heavy chain lacks a wild type protein A binding determinant. In one embodiment, the first immunoglobulin heavy chain binds protein A under isolation conditions, and the second immunoglobulin heavy chain does not bind protein A or binds protein A at least 10-fold, a hundred-fold, or a thousand-fold weaker than the first immunoglobulin heavy chain binds protein A under isolation conditions. In a specific embodiment, the first and the second heavy chains are lgG1 isotypes, wherein the second heavy chain comprises a modification selected from 95R (EU 435R), 96F (EU 436F), and a combination thereof, and wherein the first heavy chain lacks such modification.
[00102] In one aspect, a method for making a bispecific antigen-binding protein is provided, comprising exposing a first mouse as described herein to a first antigen of interest that comprises a first epitope, exposing a second mouse as described herein to a second antigen of interest that comprises a second epitope, allowing the first and the second mouse to each mount immune responses to the antigens of interest, identifying in the first mouse a first human heavy chain variable region that binds the first epitope of the first antigen of interest, identifying in the second mouse a second human heavy chain variable region that binds the second epitope of the second antigen of interest, making a first fully human heavy chain gene that encodes a first heavy chain that binds the first epitope of the first antigen of interest, making a second fully human heavy chain gene that encodes a second heavy chain that binds the second epitope of the second antigen of interest, expressing the first heavy chain and the second heavy chain in a cell that expresses a single fully human light chain derived from a human VK1-39 or a human VK3-20 gene segment to form a bispecific antigen-binding protein, and isolating the bispecific antigen-binding protein.
[00103] In one embodiment, the first antigen and the second antigen are not identical.
[00104] In one embodiment, the first antigen and the second antigen are identical, and the first epitope and the second epitope are not identical. In one embodiment, binding of the first heavy chain variable region to the first epitope does not block binding of the second heavy chain variable region to the second epitope.
[00105] In one embodiment, the first antigen is selected from a soluble antigen and a cell surface antigen (e.g., a tumor antigen), and the second antigen comprises a cell surface receptor. In a specific embodiment, the cell surface receptor is an immunoglobulin receptor. In a specific embodiment, the immunoglobulin receptor is an Fc receptor. In one
embodiment, the first antigen and the second antigen are the same cell surface receptor, and binding of the first heavy chain to the first epitope does not block binding of the second heavy chain to the second epitope.
[00106] In one embodiment, the light chain variable domain of the light chain comprises 2 to 5 somatic mutations. In one embodiment, the light chain variable domain is a somatically mutated cognate light chain expressed in a B cell of the first or the second immunized mouse with either the first or the second heavy chain variable domain. [00107] In one embodiment, the first fully human heavy chain bears an amino acid modification that reduces its affinity to protein A, and he second fully human heavy chain does not comprise a modification that reduces its affinity to protein A.
[00108] In one aspect, an antibody or a bispecific antibody comprising a human heavy chain variable domain made in accordance with the invention is provided. In another aspect, use of a mouse as described herein to make a fully human antibody or a fully human bispecific antibody is provided.
[00109] In one aspect, a genetically modified mouse, embryo, or cell described herein comprises a κ light chain locus that retains endogenous regulatory or control elements, e.g., a mouse κ intronic enhancer, a mouse κ 3' enhancer, or both an intronic enhancer and a 3' enhancer, wherein the regulatory or control elements facilitate somatic mutation and affinity maturation of an expressed sequence of the κ light chain locus.
[00110] In one aspect, a mouse is provided that comprises a B cell population
characterized by having immunoglobulin light chains derived from no more than one, or no more than two, rearranged or unrearranged immunoglobulin light chain V and J gene segments, wherein the mouse exhibits a κ:λ light chain ratio that is about the same as a mouse that comprises a wild type complement of immunoglobulin light chain V and J gene segments.
[00111] In one embodiment, the immunoglobulin light chains are derived from no more than one, or no more than two, rearranged immunoglobulin light chain V and J gene segments. In a specific embodiment, the light chains are derived from no more than one rearranged immunoglobulin light chain V and J gene segments.
[00112] In one aspect, a mouse as described herein is provided that expresses an immunoglobulin light chain derived from no more than one, or no more than two, human VK/JK sequences, wherein the mouse comprises a replacement of all or substantially all endogenous mouse heavy chain variable region gene segments with one or more human heavy chain variable region gene segments, and the mouse exhibits a ratio of (a) CD19+ B cells that express an immunoglobulin having a λ light chain, to (b) CD19+ B cells that express an immunoglobulin having a κ light chain, of about 1 to about 20.
[00113] In one embodiment, the mouse expresses a single κ light chain derived from a human VK1-39JK5 sequence, and the ratio of CD19+ B cells that express an immunoglobulin having a λ light chain to CD19+ B cells that express an immunoglobulin having a κ light chain is about 1 to about 20; in one embodiment, the ratio is about 1 to at least about 66; in a specific embodiment, the ratio is about 1 to 66.
[00114] In one embodiment, the mouse expresses a single κ light chain derived from a human VK3-20JK5 sequence, and the ratio of CD19+ B cells that express an immunoglobulin having a λ light chain to CD19+ B cells that express an immunoglobulin having a κ light chain is about 1 to about 20; in one embodiment, the ratio is about 1 to about 21. In specific embodiments, the ratio is 1 to 20, or 1 to 21.
[00115] In one aspect, a genetically modified mouse is provided that expresses a single rearranged κ light chain, wherein the mouse comprises a functional λ light chain locus, and wherein the mouse expresses a B cell population that comprises cells that express a κ
Figure imgf000024_0005
light chain derived from the same single rearranged κ light chain. In one embodiment, the percent of
Figure imgf000024_0002
B cells in the mouse is about the same as in a wild type mouse. In a specific embodiment, the percent of
Figure imgf000024_0003
B cells in the mouse is about 2 to about 6 percent. In a specific embodiment, the percent of
Figure imgf000024_0004
B cells in a mouse wherein the single rearranged κ light chain is derived from a VK1-39JK5 sequence is about 2 to about 3; in a specific embodiment, the percent is about 2.6. In a specific embodiment, the percent of
Figure imgf000024_0001
B cells in a mouse wherein the single rearranged κ light chain is derived from a VK3-20JK1 sequence is about 4 to about 8; in a specific embodiment, about 6.
[00116] In one aspect, a genetically modified mouse is provided, wherein the mouse expresses a single rearranged κ light chain derived from a human VK and JK gene segment, wherein the mouse expresses a B cell population that comprises a single κ light chain derived from the single rearranged κ light chain sequence, wherein the genetically modified mouse has not been rendered resistant to somatic hypermutations. In one embodiment, at least 90% of the κ light chains expressed on a B cell of the mouse exhibit from at least one to about five somatic hypermutations.
[00117] In one aspect, a genetically modified mouse is provided that is modified to express a single κ light chain derived from no more than one, or no more than two, rearranged κ light chain sequences, wherein the mouse exhibits a κ light chain usage that is about two-fold or more, at least about three-fold or more, or at least about four-fold or more greater than the κ light chain usage exhibited by a wild type mouse, or greater than the κ light chain usage exhibited by a mouse of the same strain that comprises a wild type repertoire of κ light chain gene segments. In a specific embodiment, the mouse expresses the single κ light chain from no more than one rearranged κ light chain sequence. In a more specific embodiment, the rearranged κ light chain sequence is selected from a VK1-39JK5 and VK3-20JK1 sequence. In one embodiment, the rearranged κ light chain sequence is a VK1-39JK5 sequence. In one embodiment, the rearranged κ light chain sequence is a VK3- 20JK1 sequence.
[00118] In one aspect, a genetically modified mouse is provided that expresses a single κ light chain derived from no more than one, or no more than two, rearranged κ light chain sequences, wherein the mouse exhibits a κ light chain usage that is about 100-fold or more, at least about 200-fold or more, at least about 300-fold or more, at least about 400-fold or more, at least about 500-fold or more, at least about 600-fold or more, at least about 700- fold or more, at least about 800-fold or more, at least about 900-fold or more, at least about 1000-fold or more greater than the same κ light chain usage exhibited by a mouse bearing a complete or substantially complete human κ light chain locus. In a specific embodiment, the mouse bearing a complete or substantially complete human κ light chain locus lacks a functional unrearranged mouse κ light chain sequence. In a specific embodiment, the mouse expresses the single κ light chain from no more than one rearranged κ light chain sequence. In one embodiment, the mouse comprises one copy of a rearranged κ light chain sequence (e.g., a heterozygote). In one embodiment, the mouse comprises two copies of a rearranged κ light chain sequence (e.g., a homozygote). In a more specific embodiment, the rearranged κ light chain sequence is selected from a V 1-39JK5 and VK3-20JK1 sequence. In one embodiment, the rearranged κ light chain sequence is a VK1-39JK5 sequence. In one embodiment, the rearranged κ light chain sequence is a VK3-20JK1 sequence.
[00119] In one aspect, a genetically modified mouse is provided that expresses a single light chain derived from no more than one, or no more than two, rearranged light chain sequences, wherein the light chain in the genetically modified mouse exhibits a level of expression that is at least 10-fold to about 1 ,000-fold, 100-fold to about 1 ,000-fold, 200-fold to about 1 ,000-fold, 300-fold to about 1 ,000-fold, 400-fold to about 1 , 000-fold, 500-fold to about 1 ,000-fold, 600-fold to about 1 ,000-fold, 700-fold to about 1 ,000-fold, 800-fold to about 1 ,000-fold, or 900-fold to about 1 ,000-fold higher than expression of the same rearranged light chain exhibited by a mouse bearing a complete or substantially complete light chain locus. In one embodiment, the light chain comprises a human sequence. In a specific embodiment, the human sequence is a κ sequence. In one embodiment, the human sequence is a λ sequence. In one embodiment, the light chain is a fully human light chain.
[00120] In one embodiment, the level of expression is characterized by quantitating mRNA of transcribed light chain sequence, and comparing it to transcribed light chain sequence of a mouse bearing a complete or substantially complete light chain locus.
[00121] In one aspect, a genetically modified mouse is provided that expresses a single κ light chain derived from no more than one, or no more than two, rearranged κ light chain sequences, wherein the mouse, upon immunization with antigen, exhibits a serum titer that is comparable to a wild type mouse immunized with the same antigen. In a specific embodiment, the mouse expresses a single κ light chain from no more than one rearranged K light chain sequence. In one embodiment, the serum titer is characterized as total immunoglobulin. In a specific embodiment, the serum titer is characterized as IgM specific titer. In a specific embodiment, the serum titer is characterized as IgG specific titer. In a more specific embodiment, the rearranged κ light chain sequence is selected from a VK1- 39JK5 and VK3-20JK1 sequence. In one embodiment, the rearranged κ light chain sequence is a VK1-39JK5 sequence. In one embodiment, the rearranged κ light chain sequence is a VK3-20JK1 sequence.
[00122] In one aspect, a genetically modified mouse is provided that expresses a population of antigen-specific antibodies, wherein all of the immunoglobulin light chains of the population of antigen-specific antibodies comprise a human light chain variable (VL) region derived from the same single human VL gene segment and the immunoglobulin heavy chains comprise a human heavy chain variable (VH) region derived from one of a plurality of human VH gene segments.
[00123] In various embodiments, the human VH gene segments are selected from VH1-2, VH1-3, VH1 -8, VH1-18, VH1 -24, VH1-46, VH1 -58, VH1 -69, VH2-5, VH2-26, VH2-70, VH3-7, VH3- 9, VH3-1 1 , VH3-13, VH3-15, VH3-20, VH3-21 , VH3-23, VH3-30, VH3-33, VH3-43, VH3-48, VH3- 53, VH3-64, VH3-72, VH3-73, VH4-31 , VH4-34, VH4-39, VH4-59, VH5-51 , and VH6-1.
[00124] In various embodiments, same single human VL gene segment is selected from a human VK1 -39 gene segment and a human VK3-20 gene segment. In various
embodiments, all of the immunoglobulin light chains comprise a human light chain J (J|_) gene segment selected from a JK and a ϋλ gene segment. In a specific embodiment, the human JL gene segment is selected from a human JK1 and a JK5 gene segment. In various embodiments, the mouse lacks a sequence selected from a mouse immunoglobulin VL gene segment, a mouse immunoglobulin JL gene segment, and a combination thereof. In various embodiments, the human VL region is operably linked to a human, mouse, or rat
immunoglobulin light chain constant (CL) region. In a specific embodiment, the human VL region is operably linked to a mouse CK region. In a specific embodiment, the human VL region is operably linked to a rat CK region.
[00125] In various embodiments, the human VL region is expressed from an endogenous immunoglobulin light chain locus. In various embodiments, the human VH region is operably linked to a human, mouse, or rat immunoglobulin heavy chain constant (CH) region. In various embodiments the (CH) region comprises a human sequence selected from a CH1 , a hinge, a CH2, a CH3, a CH4, and/or a combination thereof. In various embodiments, the human VH region is expressed from an endogenous immunoglobulin heavy chain locus.
[00126] In one aspect, a genetically modified mouse is provided that expresses a plurality of immunoglobulin heavy chains associated with a single light chain. In one embodiment, the heavy chain comprises a human sequence. In various embodiments, the human sequence is selected from a variable sequence, a CH1 , a hinge, a CH2, a CH3, and a combination thereof. In one embodiment, the single light chain comprises a human sequence. In various embodiments, the human sequence is selected from a variable sequence, a constant sequence, and a combination thereof. In one embodiment, the mouse comprises a disabled endogenous immunoglobulin locus and expresses the heavy chain and/or the light chain from a transgene or extrachromosomal episome. In one embodiment, the mouse comprises a replacement at an endogenous mouse locus of some or all endogenous mouse heavy chain gene segments (i.e., V, D, J), and/or some or all endogenous mouse heavy chain constant sequences (e.g., CH1 , hinge, CH2, CH3, or a combination thereof), and/or some or all endogenous mouse light chain sequences (e.g., V, J, constant, or a combination thereof), with one or more human immunoglobulin sequences.
[001 27] In one aspect, a mouse suitable for making antibodies that have the same light chain is provided, wherein all or substantially all antibodies made in the mouse are expressed with the same light chain. In one embodiment, the light chain is expressed from an endogenous light chain locus.
[001 28] In one aspect, a method for making a light chain for a human antibody is provided, comprising obtaining from a mouse as described herein a light chain sequence and a heavy chain sequence, and employing the light chain sequence and the heavy chain sequence in making a human antibody. In one embodiment, the human antibody is a bispecific antibody.
[001 29] In one aspect, a method for identifying a human heavy chain variable domain that is capable of binding an antigen of interest with an engineered light chain as described herein is provided, wherein the method comprises providing a heavy chain variable domain derived from a first antibody that is capable of binding the antigen, repairing the heavy chain variable domain with a germline light chain sequence and transfecting a cell so that each are expressed to form a second antibody, exposing the second antibody to the antigen, and measuring binding of the second antibody to the antigen.
[00130] In one embodiment, the light chain of the first antibody comprises a human VK1 - 39 sequence. In one embodiment, the light chain of the first antibody comprises a human VK3-20 sequence. In one embodiment, the germline light chain sequence comprises a human VK1-39 or VK3-20 sequence. In various embodiments, binding of the second antibody to the antigen is determined by comparison of binding of the first antibody to the antigen.
[001 31 ] Any of the embodiments and aspects described herein can be used in
conjunction with one another, unless otherwise indicated or apparent from the context. Other embodiments will become apparent to those skilled in the art from a review of the ensuing description.
BRIEF DESCRIPTION OF FIGURES
[00132] FIG. 1 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VK1-39JK5 gene region.
[00133] FIG. 2 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VK3-20JK1 gene region.
[00134] FIG. 3 illustrates a targeting strategy for replacing endogenous mouse immunoglobulin light chain variable region gene segments with a human VpreB/J 5 gene region.
[00135] FIG. 4 shows the percent of CD19+ B cells (y-axis) from peripheral blood for wild type mice (WT), mice homozygous for an engineered human rearranged VK1 -39JK5 light chain region (VK1-39JK5 HO) and mice homozygous for an engineered human rearranged VK3-20JK1 light chain region (VK3-20JK1 HO).
[00136] FIG. 5A shows the relative mRNA expression (y-axis) of a νκΙ-39-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK1 -39JK5 light chain region (VK1-39JK5 Junction Probe) and the human VK1 -39 gene segment (VK1-39 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and J gene segments (Ηκ), a wild type mouse (WT), and a mouse heterozygous for an engineered human rearranged VK1- 39JK5 light chain region (VK1-39JK5 HET). Signals are normalized to expression of mouse CK. N.D.: not detected.
[00137] FIG. 5B shows the relative mRNA expression (y-axis) of a νκΙ-39-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK1-39JK5 light chain region (VK1-39JK5 Junction Probe) and the human VK1-39 gene segment (VK1 -39 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and JK gene segments (Ηκ), a wild type mouse (WT), and a mouse homozygous for an engineered human rearranged VK1- 39JK5 light chain region (VK1-39JK5 HO). Signals are normalized to expression of mouse
[00138] FIG. 5C shows the relative mRNA expression (y-axis) of a VK3-20-derived light chain in a quantitative PCR assay using probes specific for the junction of an engineered human rearranged VK3-20JK1 light chain region (VK3-20JK1 Junction Probe) and the human VK3-20 gene segment (VK3-20 Probe) in a mouse homozygous for a replacement of the endogenous VK and JK gene segments with human VK and JK gene segments (Ηκ), a wild type mouse (WT), and a mouse heterozygous (HET) and homozygous (HO) for an engineered human rearranged VK3-20JK1 light chain region. Signals are normalized to expression of mouse CK.
[00139] FIG. 6A shows IgM (left) and IgG (right) titer in wild type (WT; N=2) and mice homozygous for an engineered human rearranged VK1-39JK5 light chain region (VK1-39JK5 HO; N=2) immunized with β-galatosidase.
[00140] FIG. 6B shows total immunoglobulin (IgM, IgG, IgA) titer in wild type (WT; N=5) and mice homozygous for an engineered human rearranged VK3-20JK1 light chain region (VK3-20JK1 HO; N=5) immunized with β-galatosidase.
DETAILED DESCRIPTION
[00141] This invention is not limited to particular methods, and experimental conditions described, as such methods and conditions may vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present invention is defined by the claims.
[00142] Unless defined otherwise, all terms and phrases used herein include the meanings that the terms and phrases have attained in the art, unless the contrary is clearly indicated or clearly apparent from the context in which the term or phrase is used. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, particular methods and materials are now described.
[00143] The term "antibody", as used herein, includes immunoglobulin molecules comprising four polypeptide chains, two heavy (H) chains and two light (L) chains interconnected by disulfide bonds. Each heavy chain comprises a heavy chain variable (VH) region and a heavy chain constant region (CH). The heavy chain constant region comprises three domains, CH1 , CH2 and CH3. Each light chain comprises a light chain variable (VL) region and a light chain constant region (CL). The VH and VL regions can be further subdivided into regions of hypervariability, termed complementarity determining regions (CDR), interspersed with regions that are more conserved, termed framework regions (FR). Each VH and VL comprises three CDRs and four FRs, arranged from amino-terminus to carboxy-terminus in the following order: FR1 , CDR1 , FR2, CDR2, FR3, CDR3, FR4 (heavy chain CDRs may be abbreviated as HCDR1 , HCDR2 and HCDR3; light chain CDRs may be abbreviated as LCDR1 , LCDR2 and LCDR3. The term "high affinity" antibody refers to an antibody that has a KD with respect to its target epitope about of 10 M or lower (e.g., about 1 x 10~9 M, 1 x 10"10 M, 1 x 10"11 M, or about 1 x 10"12 M). In one embodiment, KD is measured by surface plasmon resonance, e.g., BIACORE™; in another embodiment, KD is measured by ELISA.
[00144] The phrase "bispecific antibody" includes an antibody capable of selectively binding two or more epitopes. Bispecific antibodies generally comprise two nonidentical heavy chains, with each heavy chain specifically binding a different epitope— either on two different molecules (e.g., different epitopes on two different immunogens) or on the same molecule (e.g., different epitopes on the same immunogen). If a bispecific antibody is capable of selectively binding two different epitopes (a first epitope and a second epitope), the affinity of the first heavy chain for the first epitope will generally be at least one to two or three or four or more orders of magnitude lower than the affinity of the first heavy chain for the second epitope, and vice versa. Epitopes specifically bound by the bispecific antibody can be on the same or a different target (e.g., on the same or a different protein). Bispecific antibodies can be made, for example, by combining heavy chains that recognize different epitopes of the same immunogen. For example, nucleic acid sequences encoding heavy chain variable sequences that recognize different epitopes of the same immunogen can be fused to nucleic acid sequences encoding the same or different heavy chain constant regions, and such sequences can be expressed in a cell that expresses an immunoglobulin light chain. A typical bispecific antibody has two heavy chains each having three heavy chain CDRs, followed by (N-terminal to C-terminal) a CH1 domain, a hinge, a CH2 domain, and a CH3 domain, and an immunoglobulin light chain that either does not confer epitope- binding specificity but that can associate with each heavy chain, or that can associate with each heavy chain and that can bind one or more of the epitopes bound by the heavy chain epitope-binding regions, or that can associate with each heavy chain and enable binding or one or both of the heavy chains to one or both epitopes.
[00145] The term "cell" includes any cell that is suitable for expressing a recombinant nucleic acid sequence. Cells include those of prokaryotes and eukaryotes (single-cell or multiple-cell), bacterial cells (e.g., strains of E. coli, Bacillus spp., Streptomyces spp., etc.), mycobacteria cells, fungal cells, yeast cells (e.g., S. cerevisiae, S. pombe, P. pastoris, P. methanolica, etc.), plant cells, insect cells (e.g., SF-9, SF-21 , baculovirus-infected insect cells, Trichoplusia ni, etc.), non-human animal cells, human cells, or cell fusions such as, for example, hybridomas or quadromas. In some embodiments, the cell is a human, monkey, ape, hamster, rat, or mouse cell. In some embodiments, the cell is eukaryotic and is selected from the following cells: CHO (e.g., CHO K1 , DXB-11 CHO, Veggie-CHO), COS (e.g., COS-7), retinal cell, Vero, CV1 , kidney (e.g., HEK293, 293 EBNA, MSR 293, MDCK, HaK, BHK), HeLa, HepG2, WI38, MRC 5, Colo205, HB 8065, HL-60, (e.g., BHK21 ), Jurkat, Daudi, A431 (epidermal), CV-1 , U937, 3T3, L cell, C127 cell, SP2/0, NS-0, MMT 060562, Sertoli cell, BRL 3A cell, HT1080 cell, myeloma cell, tumor cell, and a cell line derived from an aforementioned cell. In some embodiments, the cell comprises one or more viral genes, e.g., a retinal cell that expresses a viral gene (e.g., a PER.C6™ cell).
[00146] The phrase "complementarity determining region," or the term "CDR," includes an amino acid sequence encoded by a nucleic acid sequence of an organism's immunoglobulin genes that normally (i.e., in a wild type animal) appears between two framework regions in a variable region of a light or a heavy chain of an immunoglobulin molecule {e.g., an antibody or a T cell receptor). A CDR can be encoded by, for example, a germline sequence or a rearranged or unrearranged sequence, and, for example, by a naive or a mature B cell or a T cell. A CDR can be somatically mutated (e.g., vary from a sequence encoded in an animal's germline), humanized, and/or modified with amino acid substitutions, additions, or deletions. In some circumstances (e.g., for a CDR3), CDRs can be encoded by two or more sequences (e.g., germline sequences) that are not contiguous (e.g., in an unrearranged nucleic acid sequence) but are contiguous in a B cell nucleic acid sequence, e.g., as the result of splicing or connecting the sequences (e.g., V-D-J recombination to form a heavy chain CDR3).
[00147] The term "conservative," when used to describe a conservative amino acid substitution, includes substitution of an amino acid residue by another amino acid residue having a side chain R group with similar chemical properties (e.g., charge or hydrophobicity). In general, a conservative amino acid substitution will not substantially change the functional properties of interest of a protein, for example, the ability of a variable region to specifically bind a target epitope with a desired affinity. Examples of groups of amino acids that have side chains with similar chemical properties include aliphatic side chains such as glycine, alanine, valine, leucine, and isoleucine; aliphatic-hydroxyl side chains such as serine and threonine; amide-containing side chains such as asparagine and glutamine; aromatic side chains such as phenylalanine, tyrosine, and tryptophan; basic side chains such as lysine, arginine, and histidine; acidic side chains such as aspartic acid and glutamic acid; and, sulfur-containing side chains such as cysteine and methionine. Conservative amino acids substitution groups include, for example, valine/leucine/isoleucine, phenylalanine/tyrosine, lysine/arginine, alanine/valine, glutamate/aspartate, and asparagine/glutamine. In some embodiments, a conservative amino acid substitution can be substitution of any native residue in a protein with alanine, as used in, for example, alanine scanning mutagenesis. In some embodiments, a conservative substitution is made that has a positive value in the PAM250 log-likelihood matrix disclosed in Gonnet et al. (1992) Exhaustive Matching of the Entire Protein Sequence Database, Science 256:1443-45. In some embodiments, the substitution is a moderately conservative substitution wherein the substitution has a nonnegative value in the PAM250 log-likelihood matrix.
[00148] In some embodiments, residue positions in an immunoglobulin light chain or heavy chain differ by one or more conservative amino acid substitutions. In some embodiments, residue positions in an immunoglobulin light chain or functional fragment thereof (e.g., a fragment that allows expression and secretion from, e.g., a B cell) are not identical to a light chain whose amino acid sequence is listed herein, but differs by one or more conservative amino acid substitutions.
[00149] The phrase "epitope-binding protein" includes a protein having at least one CDR and that is capable of selectively recognizing an epitope, e.g., is capable of binding an epitope with a KD that is at about one micromolar or lower (e.g., a KD that is about 1 x 10"6 M, 1 x 1 fJ7 M, 1 x 1 fJ9 M, 1 x 1 CT9 M, 1 x 1 fJ10 M, 1 x 1 CT11 M, or about 1 x 1 fJ12 M). Therapeutic epitope-binding proteins (e.g., therapeutic antibodies) frequently require a KD that is in the nanomolar or the picomolar range.
[00150] The phrase "functional fragment" includes fragments of epitope-binding proteins that can be expressed, secreted, and specifically bind to an epitope with a KD in the micromolar, nanomolar, or picomolar range. Specific recognition includes having a KD that is at least in the micromolar range, the nanomolar range, or the picomolar range.
[00151] The term "germline" includes reference to an immunoglobulin nucleic acid sequence in a non-somatically mutated cell, e.g., a non-somatically mutated B cell or pre-B cell or hematopoietic cell.
[00152] The phrase "heavy chain," or "immunoglobulin heavy chain" includes an immunoglobulin heavy chain constant region sequence from any organism. Heavy chain variable domains include three heavy chain CDRs and four FR regions, unless otherwise specified. Fragments of heavy chains include CDRs, CDRs and FRs, and combinations thereof. A typical heavy chain has, following the variable domain (from N-terminal to C- terminal), a CH1 domain, a hinge, a CH2 domain, and a CH3 domain. A functional fragment of a heavy chain includes a fragment that is capable of specifically recognizing an epitope (e.g., recognizing the epitope with a KD in the micromolar, nanomolar, or picomolar range), that is capable of expressing and secreting from a cell, and that comprises at least one CDR.
[00153] The term "identity" when used in connection with sequence includes identity as determined by a number of different algorithms known in the art that can be used to measure nucleotide and/or amino acid sequence identity. In some embodiments described herein, identities are determined using a ClustalW v. 1.83 (slow) alignment employing an open gap penalty of 10.0, an extend gap penalty of 0.1 , and using a Gonnet similarity matrix (MACVECTOR™ 10.0.2, MacVector Inc., 2008). The length of the sequences compared with respect to identity of sequences will depend upon the particular sequences, but in the case of a light chain constant domain, the length should contain sequence of sufficient length to fold into a light chain constant domain that is capable of self-association to form a canonical light chain constant domain, e.g., capable of forming two beta sheets comprising beta strands and capable of interacting with at least one CH1 domain of a human or a mouse. In the case of a CH1 domain, the length of sequence should contain sequence of sufficient length to fold into a CH1 domain that is capable of forming two beta sheets comprising beta strands and capable of interacting with at least one light chain constant domain of a mouse or a human.
[00154] The phrase "immunoglobulin molecule" includes two immunoglobulin heavy chains and two immunoglobulin light chains. The heavy chains may be identical or different, and the light chains may be identical or different.
[00155] The phrase "light chain" includes an immunoglobulin light chain sequence from any organism, and unless otherwise specified includes human κ and λ light chains and a VpreB, as well as surrogate light chains. Light chain variable (VL) domains typically include three light chain CDRs and four framework (FR) regions, unless otherwise specified.
Generally, a full-length light chain includes, from amino terminus to carboxyl terminus, a VL domain that includes FR1 -CDR1 -FR2-CDR2-FR3-CDR3-FR4, and a light chain constant domain. Light chains include those, e.g., that do not selectively bind either a first or a second epitope selectively bound by the epitope-binding protein in which they appear. Light chains also include those that bind and recognize, or assist the heavy chain with binding and recognizing, one or more epitopes selectively bound by the epitope-binding protein in which they appear. Common light chains are those derived from a rearranged human VK1-39JK5 sequence or a rearranged human VK3-20JK1 sequence, and include somatically mutated (e.g., affinity matured) versions.
[00156] The phrase "micromolar range" is intended to mean 1 -999 micromolar; the phrase "nanomolar range" is intended to mean 1-999 nanomolar; the phrase "picomolar range" is intended to mean 1-999 picomolar.
[00157] The phrase "somatically mutated" includes reference to a nucleic acid sequence from a B cell that has undergone class-switching, wherein the nucleic acid sequence of an immunoglobulin variable region (e.g., a heavy chain variable domain or including a heavy chain CDR or FR sequence) in the class-switched B cell is not identical to the nucleic acid sequence in the B cell prior to class-switching, such as, for example, a difference in a CDR or framework nucleic acid sequence between a B cell that has not undergone class- switching and a B cell that has undergone class-switching. "Somatically mutated" includes reference to nucleic acid sequences from affinity-matured B cells that are not identical to corresponding immunoglobulin variable region sequences in B cells that are not affinity- matured (i.e., sequences in the genome of germline cells). The phrase "somatically mutated" also includes reference to an immunoglobulin variable region nucleic acid sequence from a B cell after exposure of the B cell to an epitope of interest, wherein the nucleic acid sequence differs from the corresponding nucleic acid sequence prior to exposure of the B cell to the epitope of interest. The phrase "somatically mutated" refers to sequences from antibodies that have been generated in an animal, e.g., a mouse having human immunoglobulin variable region nucleic acid sequences, in response to an immunogen challenge, and that result from the selection processes inherently operative in such an animal.
[00158] The term "unrearranged," with reference to a nucleic acid sequence, includes nucleic acid sequences that exist in the germline of an animal cell.
[00159] The phrase "variable domain" includes an amino acid sequence of an
immunoglobulin light or heavy chain (modified as desired) that comprises the following amino acid regions, in sequence from N-terminal to C-terminal (unless otherwise indicated): FR1 , CDR1 , FR2, CDR2, FR3, CDR3, FR4.
Common Light Chain
[00160] Prior efforts to make useful multispecific epitope-binding proteins, e.g., bispecific antibodies, have been hindered by variety of problems that frequently share a common paradigm: in vitro selection or manipulation of sequences to rationally engineer, or to engineer through trial-and-error, a suitable format for pairing a heterodimeric bispecific human immunoglobulin. Unfortunately, most if not all of the in vitro engineering approaches provide largely ad hoc fixes that are suitable, if at all, for individual molecules. On the other hand, in vivo methods for employing complex organisms to select appropriate pairings that are capable of leading to human therapeutics have not been realized.
[00161] Generally, native mouse sequences are frequently not a good source for human therapeutic sequences. For at least that reason, generating mouse heavy chain
immunoglobulin variable regions that pair with a common human light chain is of limited practical utility. More in vitro engineering efforts would be expended in a trial-and-error process to try to humanize the mouse heavy chain variable sequences while hoping to retain epitope specificity and affinity while maintaining the ability to couple with the common human light chain, with uncertain outcome. At the end of such a process, the final product may maintain some of the specificity and affinity, and associate with the common light chain, but ultimately immunogenicity in a human would likely remain a profound risk.
[00162] Therefore, a suitable mouse for making human therapeutics would include a suitably large repertoire of human heavy chain variable region gene segments in place of endogenous mouse heavy chain variable region gene segments. The human heavy chain variable region gene segments should be able to rearrange and recombine with an endogenous mouse heavy chain constant domain to form a reverse chimeric heavy chain (i.e., a heavy chain comprising a human variable domain and a mouse constant region). The heavy chain should be capable of class switching and somatic hypermutation so that a suitably large repertoire of heavy chain variable domains are available for the mouse to select one that can associate with the limited repertoire of human light chain variable regions.
[00163] A mouse that selects a common light chain for a plurality of heavy chains has a practical utility. In various embodiments, antibodies that express in a mouse that can only express a common light chain will have heavy chains that can associate and express with an identical or substantially identical light chain. This is particularly useful in making bispecific antibodies. For example, such a mouse can be immunized with a first immunogen to generate a B cell that expresses an antibody that specifically binds a first epitope. The mouse (or a mouse genetically the same) can be immunized with a second immunogen to generate a B cell that expresses an antibody that specifically binds the second epitope. Variable heavy regions can be cloned from the B cells and expresses with the same heavy chain constant region, and the same light chain, and expressed in a cell to make a bispecific antibody, wherein the light chain component of the bispecific antibody has been selected by a mouse to associate and express with the light chain component.
[00164] The inventors have engineered a mouse for generating immunoglobulin light chains that will suitably pair with a rather diverse family of heavy chains, including heavy chains whose variable regions depart from germline sequences, e.g., affinity matured or somatically mutated variable regions. In various embodiments, the mouse is devised to pair human light chain variable domains with human heavy chain variable domains that comprise somatic mutations, thus enabling a route to high affinity binding proteins suitable for use as human therapeutics.
[00165] The genetically engineered mouse, through the long and complex process of antibody selection within an organism, makes biologically appropriate choices in pairing a diverse collection of human heavy chain variable domains with a limited number of human light chain options. In order to achieve this, the mouse is engineered to present a limited number of human light chain variable domain options in conjunction with a wide diversity of human heavy chain variable domain options. Upon challenge with an immunogen, the mouse maximizes the number of solutions in its repertoire to develop an antibody to the immunogen, limited largely or solely by the number or light chain options in its repertoire. In various embodiments, this includes allowing the mouse to achieve suitable and compatible somatic mutations of the light chain variable domain that will nonetheless be compatible with a relatively large variety of human heavy chain variable domains, including in particular somatically mutated human heavy chain variable domains.
[00166] To achieve a limited repertoire of light chain options, the mouse is engineered to render nonfunctional or substantially nonfunctional its ability to make, or rearrange, a native mouse light chain variable domain. This can be achieved, e.g., by deleting the mouse's light chain variable region gene segments. The endogenous mouse locus can then be modified by an exogenous suitable human light chain variable region gene segment of choice, operably linked to the endogenous mouse light chain constant domain, in a manner such that the exogenous human variable region gene segments can combine with the
endogenous mouse light chain constant region gene and form a rearranged reverse chimeric light chain gene (human variable, mouse constant). In various embodiments, the light chain variable region is capable of being somatically mutated. In various embodiments, to maximize ability of the light chain variable region to acquire somatic mutations, the appropriate enhancer(s) is retained in the mouse. For example, in modifying a mouse κ light chain locus to replace endogenous mouse κ light chain gene segments with human κ light chain gene segments, the mouse κ intronic enhancer and mouse κ 3' enhancer are functionally maintained, or undisrupted.
[00167] A genetically engineered mouse is provided that expresses a limited repertoire of reverse chimeric (human variable, mouse constant) light chains associated with a diversity of reverse chimeric (human variable, mouse constant) heavy chains. In various
embodiments, the endogenous mouse κ light chain gene segments are deleted and replaced with a single (or two) rearranged human light chain region, operably linked to the endogenous mouse CK gene. In embodiments for maximizing somatic hypermutation of the rearranged human light chain region, the mouse κ intronic enhancer and the mouse κ 3' enhancer are maintained. In various embodiments, the mouse also comprises a
nonfunctional λ light chain locus, or a deletion thereof or a deletion that renders the locus unable to make a λ light chain.
[00168] A genetically engineered mouse is provided that, in various embodiments, comprises a light chain variable region locus lacking endogenous mouse light chain VL and Ji_ gene segments and comprising a rearranged human light chain variable region, in one embodiment a rearranged human VL/JL sequence, operably linked to a mouse constant region, wherein the locus is capable of undergoing somatic hypermutation, and wherein the locus expresses a light chain comprising the human VL/JL sequence linked to a mouse constant region. Thus, in various embodiments, the locus comprises a mouse κ 3' enhancer, which is correlated with a normal, or wild type, level of somatic hypermutation. [00169] The genetically engineered mouse in various embodiments when immunized with an antigen of interest generates B cells that exhibit a diversity of rearrangements of human immunoglobulin heavy chain variable regions that express and function with one or with two rearranged light chains, including embodiments where the one or two light chains comprise human light chain variable regions that comprise, e.g., 1 to 5 somatic mutations. In various embodiments, the human light chains so expressed are capable of associating and expressing with any human immunoglobulin heavy chain variable region expressed in the mouse.
Epitope-binding Proteins Binding More Than One Epitope
[00170] The compositions and methods of described herein can be used to make binding proteins that bind more than one epitope with high affinity, e.g., bispecific antibodies.
Advantages of the invention include the ability to select suitably high binding (e.g., affinity matured) heavy chain immunoglobulin chains each of which will associate with a single light chain.
[00171] Synthesis and expression of bispecific binding proteins has been problematic, in part due to issues associated with identifying a suitable light chain that can associate and express with two different heavy chains, and in part due to isolation issues. The methods and compositions described herein allow for a genetically modified mouse to select, through otherwise natural processes, a suitable light chain that can associate and express with more than one heavy chain, including heavy chains that are somatically mutated (e.g., affinity matured). Human VL and VH sequences from suitable B cells of immunized mice as described herein that express affinity matured antibodies having reverse chimeric heavy chains (i.e., human variable and mouse constant) can be identified and cloned in frame in an expression vector with a suitable human constant region gene sequence (e.g., a human lgG1 ). Two such constructs can be prepared, wherein each construct encodes a human heavy chain variable domain that binds a different epitope. One of the human VLs (e.g., human VK1 -39JK5 or human VK3-20JK1 ), in germline sequence or from a B cell wherein the sequence has been somatically mutated, can be fused in frame to a suitable human constant region gene (e.g., a human κ constant gene). These three fully human heavy and light constructs can be placed in a suitable cell for expression. The cell will express two major species: a homodimeric heavy chain with the identical light chain, and a
heterodimeric heavy chain with the identical light chain. To allow for a facile separation of these major species, one of the heavy chains is modified to omit a Protein A-binding determinant, resulting in a differential affinity of a homodimeric binding protein from a heterodimeric binding protein. Compositions and methods that address this issue are described in USSN 12/832,838, filed 25 June 2010, entitled "Readily Isolated Bispecific Antibodies with Native Immunoglobulin Format," published as US 2010/0331527A1.
[00172] In one aspect, an epitope-binding protein as described herein is provided, wherein human VL and VH sequences are derived from mice described herein that have been immunized with an antigen comprising an epitope of interest.
[00173] In one embodiment, an epitope-binding protein is provided that comprises a first and a second polypeptide, the first polypeptide comprising, from N-terminal to C-terminal, a first epitope-binding region that selectively binds a first epitope, followed by a constant region that comprises a first CH3 region of a human IgG selected from lgG1 , lgG2, lgG4, and a combination thereof; and, a second polypeptide comprising, from N-terminal to C-terminal, a second epitope-binding region that selectively binds a second epitope, followed by a constant region that comprises a second CH3 region of a human IgG selected from lgG1 , lgG2, lgG4, and a combination thereof, wherein the second CH3 region comprises a modification that reduces or eliminates binding of the second CH3 domain to protein A.
[00174] In one embodiment, the second CH3 region comprises an H95R modification (by IMGT exon numbering; H435R by EU numbering). In another embodiment, the second CH3 region further comprises a Y96F modification (IMGT; Y436F by EU).
[00175] In one embodiment, the second CH3 region is from a modified human lgG1 , and further comprises a modification selected from the group consisting of D16E, L18M, N44S, 52N, V57M, and V82I (IMGT; D356E, L358M, N384S, K392N, V397M, and V422I by EU).
[00176] In one embodiment, the second CH3 region is from a modified human lgG2, and further comprises a modification selected from the group consisting of N44S, K52N, and V82I (IMGT; N384S, K392N, and V422I by EU).
[00177] In one embodiment, the second CH3 region is from a modified human lgG4, and further comprises a modification selected from the group consisting of Q15R, N44S, K52N, V57M, R69K, E79Q, and V82I (IMGT; Q355R, N384S, K392N, V397M, R409K, E419Q, and V422I by EU).
[00178] One method for making an epitope-binding protein that binds more than one epitope is to immunize a first mouse in accordance with the invention with an antigen that comprises a first epitope of interest, wherein the mouse comprises an endogenous immunoglobulin light chain variable region locus that does not contain an endogenous mouse VL that is capable of rearranging and forming a light chain, wherein at the
endogenous mouse immunoglobulin light chain variable region locus is a single rearranged human VL region operably linked to the mouse endogenous light chain constant region gene, and the rearranged human VL region is selected from a human VK1-39JK5 and a human VK3-20JK1 , and the endogenous mouse VH gene segments have been replaced in whole or in part with human VH gene segments, such that immunoglobulin heavy chains made by the mouse are solely or substantially heavy chains that comprise human variable domains and mouse constant domains. When immunized, such a mouse will make a reverse chimeric antibody, comprising only one of two human light chain variable domains (e.g., one of human VK1 -39JK5 or human VK3-20JK1). Once a B cell is identified that encodes a VH that binds the epitope of interest, the nucleotide sequence of the VH (and, optionally, the VL) can be retrieved (e.g., by PCR) and cloned into an expression construct in frame with a suitable human immunoglobulin constant domain. This process can be repeated to identify a second VH domain that binds a second epitope, and a second VH gene sequence can be retrieved and cloned into an expression vector in frame to a second suitable immunoglobulin constant domain. The first and the second immunoglobulin constant domains can the same or different isotype, and one of the immunoglobulin constant domains (but not the other) can be modified as described herein or in US 2010/0331527A1 , and epitope-binding protein can be expressed in a suitable cell and isolated based on its differential affinity for Protein A as compared to a homodimeric epitope-binding protein, e.g., as described in US
2010/0331527A1.
[00179] In one embodiment, a method for making a bispecific epitope-binding protein is provided, comprising identifying a first affinity-matured (e.g., comprising one or more somatic hypermutations) human VH nucleotide sequence (VH1) from a mouse as described herein, identifying a second affinity-matured (e.g., comprising one or more somatic hypermutations) human VH nucleotide sequence (VH2) from a mouse as described herein, cloning VH1 in frame with a human heavy chain lacking a Protein A-determinant modification as described in US 2010/0331527A1 for form heavy chain 1 (HC1), cloning VH2 in frame with a human heavy chain comprising a Protein A-determinant as described in US 2010/0331527A1 to form heavy chain 2 (HC2), introducing an expression vector comprising HC1 and the same or a different expression vector comprising HC2 into a cell, wherein the cell also expresses a human immunoglobulin light chain that comprises a human Vi 1-39/human JK5 or a human Vi 3-20/human J 1 fused to a human light chain constant domain, allowing the cell to express a bispecific epitope-binding protein comprising a VH domain encoded by VH1 and a VH domain encoded by VH2, and isolating the bispecific epitope-binding protein based on its differential ability to bind Protein A as compared with a monospecific homodimeric epitope- binding protein. In a specific embodiment, HC1 is an lgG1 , and HC2 is an lgG1 that comprises the modification H95R (IMGT; H435R by EU) and further comprises the modification Y96F (IMGT; Y436F by EU). In one embodiment, the VH domain encoded by VH1 , the VH domain encoded by VH2, or both, are somatically mutated. Human VH Genes That Express with a Common Human VL
[00180] A variety of human variable regions from affinity-matured antibodies raised against four different antigens were expressed with either their cognate light chain, or at least one of a human light chain selected from human VK1-39JK5, human VK3-20JK1 , or human VpreBJ 5 (see Example 1 ). For antibodies to each of the antigens, somatically mutated high affinity heavy chains from different gene families paired successfully with rearranged human germline VK1-39JK5 and VK3-20JK1 regions and were secreted from cells expressing the heavy and light chains. For VK1-39JK5 and VK3-20JK1 , VH domains derived from the following human VH gene families expressed favorably: 1-2, 1-8, 1 -24, 2-5, 3-7, 3-9, 3-1 1 , 3-13, 3-15, 3-20, 3-23, 3-30, 3-33, 3-48, 4-31 , 4-39, 4-59, 5-51 , and 6-1 . Thus, a mouse that is engineered to express a limited repertoire of human VL domains from one or both of VK1-39JK5 and VK3-20JK1 will generate a diverse population of somatically mutated human VH domains from a VH locus modified to replace mouse VH gene segments with human VH gene segments.
[00181] Mice genetically engineered to express reverse chimeric (human variable, mouse constant) immunoglobulin heavy chains associated with a single rearranged light chain (e.g., a VK1 -39/J or a VK3-20/J), when immunized with an antigen of interest, generated B cells that comprised a diversity of human VH rearrangements and expressed a diversity of high- affinity antigen-specific antibodies with diverse properties with respect to their ability to block binding of the antigen to its ligand, and with respect to their ability to bind variants of the antigen (see Examples 5 through 10).
[00182] Thus, the mice and methods described herein are useful in making and selecting human immunoglobulin heavy chain variable domains, including somatically mutated human heavy chain variable domains, that result from a diversity of rearrangements, that exhibit a wide variety of affinities (including exhibiting a KD of about a nanomolar or less), a wide variety of specificities (including binding to different epitopes of the same antigen), and that associate and express with the same or substantially the same human immunoglobulin light chain variable region.
[00183] The following examples are provided so as to describe to those of ordinary skill in the art how to make and use methods and compositions of the invention, and are not intended to limit the scope of what the inventors regard as their invention. Efforts have been made to ensure accuracy with respect to numbers used (e.g., amounts, temperature, efc.) but some experimental errors and deviations should be accounted for. Unless indicated otherwise, parts are parts by weight, molecular weight is average molecular weight, temperature is indicated in Celsius, and pressure is at or near atmospheric. EXAMPLES
[00184] The following examples are provided so as to describe to those of ordinary skill in the art how to make and use methods and compositions of the invention, and are not intended to limit the scope of what the inventors regard as their invention. Efforts have been made to ensure accuracy with respect to numbers used (e.g., amounts, temperature, etc.) but some experimental errors and deviations should be accounted for. Unless indicated otherwise, temperature is indicated in Celsius, pressure is at or near atmospheric, parts are by parts by weight, and molecular weight is average molecular weight.
Example 1
Identification of human heavy chain variable regions that associate with selected human light chain variable regions
[00185] An in vitro expression system was constructed to determine if a single rearranged human germline light chain could be co-expressed with human heavy chains from antigen specific human antibodies.
[00186] Methods for generating human antibodies in genetically modified mice are known (see e.g., US 6,596,541 , Regeneron Pharmaceuticals, VELOCIMMUNE®). The
VELOCIMMUNE® technology involves generation of a genetically modified mouse having a genome comprising human heavy and light chain variable regions operably linked to endogenous mouse constant region loci such that the mouse produces an antibody comprising a human variable region and a mouse constant region in response to antigenic stimulation. The DNA encoding the variable regions of the heavy and light chains of the antibodies produced from a VELOCIMMUNE® mouse are fully human. Initially, high affinity chimeric antibodies are isolated having a human variable region and a mouse constant region. As described below, the antibodies are characterized and selected for desirable characteristics, including affinity, selectivity, epitope, etc. The mouse constant regions are replaced with a desired human constant region to generate a fully human antibody containing a non-lgM isotype, for example, wild type or modified lgG1 , lgG2, lgG3 or lgG4. While the constant region selected may vary according to specific use, high affinity antigen- binding and target specificity characteristics reside in the variable region.
[00187] A VELOCIMMUNE® mouse was immunized with a growth factor that promotes angiogenesis (Antigen C) and antigen-specific human antibodies were isolated and sequenced for V gene usage using standard techniques recognized in the art. Selected antibodies were cloned onto human heavy and light chain constant regions and 69 heavy chains were selected for pairing with one of three human light chains: (1 ) the cognate κ light chain linked to a human κ constant region, (2) a rearranged human germline VK1-39J 5 linked to a human κ constant region, or (3) a rearranged human germline VK3-20JK1 linked to a human κ constant region. Each heavy chain and light chain pair were co-transfected in CHO-K1 cells using standard techniques. Presence of antibody in the supernatant was detected by anti-human IgG in an ELISA assay. Antibody titer (ng/ml) was determined for each heavy chain/light chain pair and titers with the different rearranged germline light chains were compared to the titers obtained with the parental antibody molecule (i.e., heavy chain paired with cognate light chain) and percent of native titer was calculated (Table 1 ). VH: Heavy chain variable gene. ND: no expression detected under current experimental conditions.
Figure imgf000042_0001
Figure imgf000043_0001
[00188] In a similar experiment, VELOCIMMUNE® mice were immunized with several different antigens and selected heavy chains of antigen specific human antibodies were tested for their ability to pair with different rearranged human germline light chains (as described above). The antigens used in this experiment included an enzyme involved in cholesterol homeostasis (Antigen A), a serum hormone involved in regulating glucose homeostasis (Antigen B), a growth factor that promotes angiogenesis (Antigen C) and a cell- surface receptor (Antigen D). Antigen specific antibodies were isolated from mice of each immunization group and the heavy chain and light chain variable regions were cloned and sequenced. From the sequence of the heavy and light chains, V gene usage was determined and selected heavy chains were paired with either their cognate light chain or a rearranged human germline VK1-39JK5 region. Each heavy/light chain pair was co- transfected in CHO-K1 cells and the presence of antibody in the supernatant was detected by anti-human IgG in an ELISA assay. Antibody titer (Mg/ml) was determined for each heavy chain/light chain pairing and titers with the different rearranged human germline light chains were compared to the titers obtained with the parental antibody molecule (i.e., heavy chain paired with cognate light chain) and percent of native titer was calculated (Table 2). VH: Heavy chain variable gene. VK: K light chain variable gene. ND: no expression detected under current experimental conditions.
Figure imgf000044_0001
Figure imgf000045_0001
[00189J The results obtained from these experiments demonstrate that somatically mutated, high affinity heavy chains from different gene families are able to pair with rearranged human germline VK1-39JK5 and VK3-20JK1 regions and be secreted from the cell as a normal antibody molecule. As shown in Table 1 , antibody titer was increased for about 61 % (42 of 69) heavy chains when paired with the rearranged human VK1 -39JK5 light chain and about 29% (20 of 69) heavy chains when paired with the rearranged human VK3- 20JK1 light chain as compared to the cognate light chain of the parental antibody. For about 20% (14 of 69) of the heavy chains, both rearranged human germline light chains conferred an increase in expression as compared to the cognate light chain of the parental antibody. As shown in Table 2, the rearranged human germline VK1 -39JK5 region conferred an increase in expression of several heavy chains specific for a range of different classes of antigens as compared to the cognate light chain for the parental antibodies. Antibody titer was increased by more than two-fold for about 35% (15/43) of the heavy chains as compared to the cognate light chain of the parental antibodies. For two heavy chains (315 and 316), the increase was greater than ten-fold as compared to the parental antibody. Within all the heavy chains that showed increase expression relative to the cognate light chain of the parental antibody, family three (VH3) heavy chains are over represented in comparison to other heavy chain variable region gene families. This demonstrates a favorable relationship of human VH3 heavy chains to pair with rearranged human germline VK1-39JK5 and VK3-20JK1 light chains.
Example 2
Generation of a Rearranged Human Germline Light Chain Locus
[00190] Various rearranged human germline light chain targeting vectors were made using VELOCIGENE® technology (see, e.g., US Pat. No. 6,586,251 and Valenzuela er a/. (2003) High-throughput engineering of the mouse genome coupled with high-resolution expression analysis, Nature Biotech. 21 (6):652-659) to modify mouse genomic Bacterial Artificial Chromosome (BAC) clones 302g12 and 254m04 (Invitrogen). Using these two BAC clones, genomic constructs were engineered to contain a single rearranged human germline light chain region and inserted into an endogenous κ light chain locus that was previously modified to delete the endogenous κ variable and joining gene segments.
[00191] Construction of Rearranged Human Germline Light Chain Targeting Vectors. Three different rearranged human germline light chain regions were made using standard molecular biology techniques recognized in the art. The human variable gene segments used for constructing these three regions included rearranged human VK1-39JK5 sequence, a rearranged human VK3-20JK1 sequence and a rearranged human VpreBJ 5 sequence.
[00192] A DNA segment containing exon 1 (encoding the leader peptide) and intron 1 of the mouse VK3-7 gene was made by de novo DNA synthesis (Integrated DNA
Technologies). Part of the 5' untranslated region up to a naturally occurring Blpl restriction enzyme site was included. Exons of human 1-39 and VK3-20 genes were PCR amplified from human genomic BAC libraries. The forward primers had a 5' extension containing the splice acceptor site of intron 1 of the mouse VK3-7 gene. The reverse primer used for PCR of the human VK1-39 sequence included an extension encoding human JK5, whereas the reverse primer used for PCR of the human VK3-20 sequence included an extension encoding human JK1. The human VpreBJ 5 sequence was made by de novo DNA synthesis (Integrated DNA Technologies). A portion of the human JK-CK intron including the splice donor site was PCR amplified from plasmid pBS-296-HA18-PIScel. The forward PCR primer included an extension encoding part of either a human JK5, JK1 , or J 5 sequence. The reverse primer included a Pl-Scel site, which was previously engineered into the intron.
[00193] The mouse VK3-7 exonl/intron 1 , human variable light chain exons, and human JK-CK intron fragments were sewn together by overlap extension PCR, digested with Blpl and Pl-Scel, and ligated into plasmid pBS-296-HA18-PIScel, which contained the promoter from the human VK3-15 variable gene segment. A loxed hygromycin cassette within plasmid pBS-296-HA18-PIScel was replaced with a FRTed hygromycin cassette flanked by Notl and AscI sites. The Notl/PI-Scel fragment of this plasmid was ligated into modified mouse BAC 254m04, which contained part of the mouse JK-CK intron, the mouse C exon, and about 75 kb of genomic sequence downstream of the mouse κ locus, which provided a 3' homology arm for homologous recombination in mouse ES cells. The Notl/AscI fragment of this BAC was then ligated into modified mouse BAC 302g12, which contained a FRTed neomycin cassette and about 23 kb of genomic sequence upstream of the endogenous κ locus for homologous recombination in mouse ES cells.
[00194] Rearranged Human Germline VK1 -39J 5 Targeting Vector (FIG. 1 ).
Restriction enzyme sites were introduced at the 5' and 3' ends of an engineered light chain insert for cloning into a targeting vector: an AscI site at the 5' end and a Pl-Scel site at the 3' end. Within the 5' AscI site and the 3' Pl-Scel site the targeting construct from 5' to 3' included a 5' homology arm containing sequence 5' to the endogenous mouse κ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, an genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse VK3-7 variable gene segment, a intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VK1-39JK5 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 (Figure 1 , middle). Genes and/or sequences upstream of the endogenous mouse κ light chain locus and downstream of the most 3' JK gene segment (e.g., the endogenous 3' enhancer) were unmodified by the targeting construct (see Figure 1 ). The sequence of the engineered human VK1-39JK5 locus is shown in SEQ ID NO:1.
[00195] Targeted insertion of the rearranged human germline VK1-39JK5 region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline light chain region. Briefly, the intron sequence 3' to the mouse 3-7 leader sequence was confirmed with primers ULC-m1 F (AGGTGAGGGT ACAGATAAGT GTTATGAG; SEQ ID NO:2) and ULC-m1 R
(TGACAAATGC CCTAATTATA GTGATCA; SEQ ID NO:3). The open reading frame of the rearranged human germline VK1-39JK5 region was confirmed with primers 1633-h2F (GGGCAAGTCA GAGCATTAGC A; SEQ ID NO:4) and 1633-h2R (TGCAAACTGG
ATGCAGCATA G; SEQ ID NO:5). The neomycin cassette was confirmed with primers neoF (GGTGGAGAGG CTATTCGGC; SEQ ID NO:6) and neoR (GAACACGGCG G CATC AG; SEQ ID NO:7). Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express a rearranged human germline VK1-39JK5 region. [00196] Positive ES cell clones were confirmed by TAQMAN™ screening and karyotyping using probes specific for the engineered VK1-39JK5 light chain region inserted into the endogenous locus. Briefly, probe neoP (TGGGCACAAC AGACAATCGG CTG; SEQ ID NO:8) which binds within the neomycin marker gene, probe ULC-m1 P (CCATTATGAT GCTCCATGCC TCTCTGTTC; SEQ ID NO:9) which binds within the intron sequence 3' to the mouse VK3-7 leader sequence, and probe 1633h2P (ATCAGCAGAA ACCAGGGAAA GCCCCT; SEQ ID NO: 10) which binds within the rearranged human germline VK1 -39JK5 open reading frame. Positive ES cell clones were then used to implant female mice to give rise to a litter of pups expressing the germline VK1-39JK5 light chain region.
[00197] Alternatively, ES cells bearing the rearranged human germline VK1-39JK5 light chain region are transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct. Optionally, the neomycin cassette is removed by breeding to mice that express FLP recombinase (e.g., US
6,774,279). Optionally, the neomycin cassette is retained in the mice.
[00198] Rearranged Human Germline VK3-20JK1 Targeting Vector (FIG. 2). In a similar fashion, an engineered light chain locus expressing a rearranged human germline VK3-20JK1 region was made using a targeting construct including, from 5' to 3', a 5' homology arm containing sequence 5' to the endogenous mouse κ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, a genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse V 3-7 variable gene segment, an intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VK3-20JK1 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 (Figure 2, middle). The sequence of the engineered human VK3-20JK1 locus is shown in SEQ ID NO:1 1.
[00199] Targeted insertion of the rearranged human germline VK3-20JK1 region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline VK3-20JK1 light chain region. Briefly, the intron sequence 3' to the mouse VK3-7 leader sequence was confirmed with primers ULC- m1 F (SEQ ID NO:2) and ULC-m1 R (SEQ ID NO:3). The open reading frame of the rearranged human germline VK3-20JK1 region was confirmed with primers 1635-h2F (TCCAGGCACC CTGTCTTTG; SEQ ID NO: 12) and 1635-h2R (AAGTAGCTGC
TGCTAACACT CTGACT; SEQ ID NO: 13). The neomycin cassette was confirmed with primers neoF (SEQ ID NO:6) and neoR (SEQ ID NO:7). Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express the rearranged human germline VK3-20JK1 light chain.
[00200] Positive ES cell clones were confirmed by TAQ AN™ screening and karyotyping using probes specific for the engineered VK3-20JK1 light chain region inserted into the endogenous κ light chain locus. Briefly, probe neoP (SEQ ID NO:8) which binds within the neomycin marker gene, probe ULC-m1 P (SEQ ID NO:9) which binds within the mouse VK3- 7 leader sequence, and probe 1635h2P (AAAGAGCCAC CCTCTCCTGC AGGG; SEQ ID NO: 14) which binds within the human VK3-20JK1 open reading frame. Positive ES cell clones were then used to implant female mice. A litter of pups expressing the human germline VK3-20JK1 light chain region.
[00201] Alternatively, ES cells bearing human germline VK3-20JK1 light chain region can be transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct. Optionally, the neomycin cassette may be removed by breeding to mice that express FLP recombinase (e.g., US 6,774,279).
Optionally, the neomycin cassette is retained in the mice.
[00202] Rearranged Human Germline VpreBJ 5 Targeting Vector (FIG. 3). In a similar fashion, an engineered light chain locus expressing a rearranged human germline VpreBJX5 region was made using a targeting construct including, from 5' to 3', a 5' homology arm containing sequence 5' to the endogenous mouse κ light chain locus obtained from mouse BAC clone 302g12, a FRTed neomycin resistance gene, an genomic sequence including the human VK3-15 promoter, a leader sequence of the mouse VK3-7 variable gene segment, an intron sequence of the mouse VK3-7 variable gene segment, an open reading frame of a rearranged human germline VpreBJ 5 region, a genomic sequence containing a portion of the human JK-CK intron, and a 3' homology arm containing sequence 3' of the endogenous mouse JK5 gene segment obtained from mouse BAC clone 254m04 (Figure 3, middle). The sequence of the engineered human VpreBJX5 locus is shown in SEQ ID NO:15.
[00203] Targeted insertion of the rearranged human germline VpreBJ S region into BAC DNA was confirmed by polymerase chain reaction (PCR) using primers located at sequences within the rearranged human germline VpreBJ 5 region light chain region.
Briefly, the intron sequence 3' to the mouse VK3-7 leader sequence was confirmed with primers ULC-m1 F (SEQ ID NO:2) and ULC-m1 R (SEQ ID NO:3). The open reading frame of the rearranged human germline VpreBJ 5 region was confirmed with primers 1616-h1 F (TGTCCTCGGC CCTTGGA; SEQ ID NO:16) and 1616-M R (CCGATGTCAT
GGTCGTTCCT; SEQ ID NO:17). The neomycin cassette was confirmed with primers neoF (SEQ ID NO:6) and neoR (SEQ ID NO:7). Targeted BAC DNA was then used to electroporate mouse ES cells to created modified ES cells for generating chimeric mice that express the rearranged human germline VpreBJ 5 light chain.
[00204] Positive ES cell clones are confirmed by TAQMAN™ screening and karyotyping using probes specific for the engineered VpreBJ 5 light chain region inserted into the endogenous κ light chain locus. Briefly, probe neoP (SEQ ID NO:8) which binds within the neomycin marker gene, probe ULC-m1 P (SEQ ID NO:9) which binds within the mouse lgVic3-7 leader sequence, and probe 1616M P (ACAATCCGCC TCACCTGCAC CCT; SEQ ID NO:18) which binds within the human VpreBJ 5 open reading frame. Positive ES cell clones are then used to implant female mice to give rise to a litter of pups expressing a germline light chain region.
[00205] Alternatively, ES cells bearing the rearranged human germline VpreBJ 5 light chain region are transfected with a construct that expresses FLP in order to remove the FRTed neomycin cassette introduced by the targeting construct. Optionally, the neomycin cassette is removed by breeding to mice that express FLP recombinase {e.g., US
6,774,279). Optionally, the neomycin cassette is retained in the mice.
Example 3
Generation of Mice expressing a single rearranged human light chain
[00206] Targeted ES cells described above were used as donor ES cells and introduced into an 8-cell stage mouse embryo by the VELOCIMOUSE® method (see, e.g., US Pat. No. 7,294,754 and Poueymirou et al. (2007) F0 generation mice that are essentially fully derived from the donor gene-targeted ES cells allowing immediate phenotypic analyses Nature Biotech. 25(1 ):91 -99. VELOCIMICE® independently bearing an engineered human germline VK1-39JK5 light chain region, a VK3-20JK1 light chain region or a
Figure imgf000050_0001
light chain region are identified by genotyping using a modification of allele assay (Valenzuela et al., supra) that detects the presence of the unique rearranged human germline light chain region.
[00207] Pups are genotyped and a pup heterozygous or homozygous for the unique rearranged human germline light chain region are selected for characterizing expression of the rearranged human germline light chain region.
[00208] Flow Cytometry. Expression of the rearranged human light chain region in the normal antibody repertoire of common light chain mice was validated by analysis of immunoglobulin κ and λ expression in splenocytes and peripheral blood of common light chain mice. Cell suspensions from harvested spleens and peripheral blood of wild type (n=5), VK1 -39JK5 common light chain heterozygote (n=3), VK1-39JK5 common light chain homozygote (n=3), VK3-20JK1 common light chain heterozygote (n=2), and VK3-20JK1 common light chain homozygote (n=2) mice were made using standard methods and stained with CD19+, \gk+ and lgK+ using fluorescently labeled antibodies (BD Pharmigen).
[00209] Briefly, 1 x106 cells were incubated with anti-mouse CD16/CD32 (clone 2.4G2, BD Pharmigen) on ice for 10 minutes, followed by labeling with the following antibody cocktail for 30 minutes on ice: APC conjugated anti-mouse CD19 (clone 1 D3, BD
Pharmigen), PerCP-Cy5.5 conjugated anti-mouse CD3 (clone 17A2, BioLegend), FITC conjugated anti-mouse Igi (clone 187.1 , BD Pharmigen), PE conjugated anti-mouse Ig (clone RML-42, BioLegend). Following staining, cells were washed and fixed in 2% formaldehyde. Data acquisition was performed on an LSRII flow cytometer and analyzed with FlowJo. Gating: total B cells (CD19+CD3"), lgK+ B cells (lgK+lg OD19+CD3 ), lgX+ B cells (lgK"lg +CD19+CD3"). Data gathered from blood and splenocyte samples
demonstrated similar results. Table 3 sets forth the percent positive CD19+ B cells from peripheral blood of one representative mouse from each group that are lg +, lgK+, or lg +lgK+. Percent of CD19+ B cells in peripheral blood from wild type (WT) and mice homozygous for either the VK1-39JK5 or VK3-20JK1 common light chain are shown in FIG. 4.
Figure imgf000051_0001
[00210] Common Light Chain Expression. Expression of each common light chain (VK1-39JK5 and VK3-20JK1) was analyzed in heterozygous and homozygous mice using a quantitative PCR assay (e.g. TAQMAN™).
[00211] Briefly, CD19+ B cells were purified from the spleens of wild type, mice homozygous for a replacement of the mouse heavy chain and κ light chain variable region loci with corresponding human heavy chain and κ light chain variable region loci (Ηκ), as well as mice homozygous and heterozygous for each rearranged human light chain region (VK1-39JK5 or VK3-20JK1) using mouse CD19 Microbeads (Miltenyi Biotec) according to manufacturer's specifications. Total RNA was purified from CD19+ B cells using RNeasy Mini kit (Qiagen) according to manufacturer's specifications and genomic RNA was removed using an RNase-free DNase on-column treatment (Qiagen). 200 ng mRNA was reverse- transcribed into cDNA using the First Stand cDNA Synthesis kit (Invitrogen) and the resulting cDNA was amplified with the Taqman Universal PCR Master Mix (Applied Biosystems). All reactions were performed using the ABI 7900 Sequence Detection System (Applied
Biosystems) using primers and Taqman MGB probes spanning (1) the VK-JK junction for both common light chains, (2) the VK gene alone (i.e. VK1-39 and 3-20), and (3) the mouse CK region. Table 4 sets forth the sequences of the primers and probes employed for this assay. Relative expression was normalized to expression of the mouse CK region. Results are shown in FIG. 5A, 5B and 5C.
Figure imgf000053_0001
[00212] Antigen Specific Common Light Chain Antibodies. Common light chain mice bearing either a VK1-39JK5 or VK3-20JK1 common light chain at the endogenous mouse κ light chain locus were immunized with β-galactosidase and antibody titer was measured.
[00213] Briefly, β-galactosidase (Sigma) was emulsified in titermax adjuvant (Sigma), as per manufacturers directions. Wild type (n=7), VK1-39JK5 common light chain homozygotes (n=2) and VK3-20JK1 common light chain homozygotes (n=5) were immunized by subcutaneous injection with 100 pg β-galactosidase Titermax. Mice were boosted by subcutaneous injection two times, 3 weeks apart, with 50 pg β-galactosidase/Titermax. After the second boost, blood was collected from anaesthetized mice using a retro-orbital bleed into serum separator tubes (BD Biosciences) as per manufacturer's directions. To measure anti^-galactosidase IgM or IgG antibodies, ELISA plates (Nunc) were coated with 1 pg/mL β-galactosidase overnight at 4°C. Excess antigen was washed off before blocking with PBS with 1 % BSA for one hour at room temperature. Serial dilutions of serum were added to the plates and incubated for one hour at room temperature before washing. Plates were then incubated with HRP conjugated anti-lgM (Southern Biotech) or anti-lgG (Southern Biotech) for one hour at room temperature. Following another wash, plates were developed with TMB substrate (BD Biosciences). Reactions were stopped with 1 N sulfuric acid and OD450 was read using a Victor X5 Plate Reader (Perkin Elmer). Data was analyzed with GraphPad Prism and signal was calculated as the dilution of serum that is two times above
background. Results are shown in FIG. 6A and 6B. [00214] As shown in this Example, the ratio of κ/λ B cells in both the splenic and peripheral compartments of VK1 -39JK5 and VK3-20JK1 common light chain mice
demonstrated a near wild type pattern (Table 3 and FIG. 4). VpreBJX5 common light chain mice, however, demonstrated fewer peripheral B cells, of which about 1 -2% express the engineered human light chain region (data not shown). The expression levels of the VK1 - 39JK5 and VK3-20JK1 rearranged human light chain regions from the endogenous κ light chain locus were elevated in comparison to an endogenous κ light chain locus containing a complete replacement of mouse VK and JK gene segments with human VK and JK gene segments (FIG. 5A, 5B and 5C). The expression levels of the Χ ρΓβΒϋλδ rearranged human light chain region demonstrated similar high expression from the endogenous κ light chain locus in both heterozygous and homozygous mice (data not shown). This demonstrates that in direct competition with the mouse λ, κ, or both endogenous light chain loci, a single rearranged human VL/JL sequence can yield better than wild type level expression from the endogenous κ light chain locus and give rise to normal splenic and blood B cell frequency. Further, the presence of an engineered κ light chain locus having either a human VK1 -39JK5 or human VK3-20JK1 sequence was well tolerated by the mice and appear to function in wild type fashion by representing a substantial portion of the light chain repertoire in the humoral component of the immune response (FIG 6A and 6B).
Example 4
Breeding of mice expressing a single rearranged human germline light chain
[00215] This Example describes several other genetically modified mouse strains that can be bred to any one of the common light chain mice described herein to create multiple genetically modified mouse strains harboring multiple genetically modified immunoglobulin loci.
[00216] Endogenous Ig Knockout (KO). To optimize the usage of the engineered light chain locus, mice bearing one of the rearranged human germline light chain regions are bred to another mouse containing a deletion in the endogenous λ light chain locus. In this manner, the progeny obtained will express, as their only light chain, the rearranged human germline light chain region as described in Example 2. Breeding is performed by standard techniques recognized in the art and, alternatively, by a commercial breeder (e.g., The Jackson Laboratory). Mouse strains bearing an engineered light chain locus and a deletion of the endogenous λ light chain locus are screened for presence of the unique light chain region and absence of endogenous mouse λ light chains.
[00217] Humanized Endogenous Heavy Chain Locus. Mice bearing an engineered human germline light chain locus are bred with mice that contain a replacement of the endogenous mouse heavy chain variable gene locus with the human heavy chain variable gene locus (see US 6,596,541 ; the VELOC IMMUNE® mouse, Regeneron Pharmaceuticals, Inc.). The VELOCIMMUNE® mouse comprises a genome comprising human heavy chain variable regions operably linked to endogenous mouse constant region loci such that the mouse produces antibodies comprising a human heavy chain variable region and a mouse heavy chain constant region in response to antigenic stimulation. The DNA encoding the variable regions of the heavy chains of the antibodies is isolated and operably linked to DNA encoding the human heavy chain constant regions. The DNA is then expressed in a cell capable of expressing the fully human heavy chain of the antibody.
[00218] Mice bearing a replacement of the endogenous mouse VH locus with the human VH locus and a single rearranged human germline VL region at the endogenous light chain locus are obtained. Reverse chimeric antibodies containing somatically mutated heavy chains (human VH and mouse CH) with a single human light chain (human VL and mouse CL) are obtained upon immunization with an antigen of interest. VH and VL nucleotide sequences of B cells expressing the antibodies are identified and fully human antibodies are made by fusion the VH and VL nucleotide sequences to human CH and CL nucleotide sequences in a suitable expression system.
Example 5
Generation of Antibodies from Mice Expressing Human Heavy Chains
and a Rearranged Human Germline Light Chain Region
[00219] After breeding mice that contain the engineered human light chain region to various desired strains containing modifications and deletions of other endogenous Ig loci (as described in Example 4), selected mice can be immunized with an antigen of interest.
[00220] Generally, a VELOCIMMUNE® mouse containing one of the single rearranged human germline light chain regions is challenged with an antigen, and lymphatic cells (such as B-cells) are recovered from serum of the animals. The lymphatic cells are fused with a myeloma cell line to prepare immortal hybridoma cell lines, and such hybridoma cell lines are screened and selected to identify hybridoma cell lines that produce antibodies containing human heavy chain variables and a rearranged human germline light chains which are specific to the antigen used for immunization. DNA encoding the variable regions of the heavy chains and the light chain are isolated and linked to desirable isotypic constant regions of the heavy chain and light chain. Due to the presence of the endogenous mouse sequences and any additional cis-acting elements present in the endogenous locus, the single light chain of each antibody may be somatically mutated. This adds additional diversity to the antigen-specific repertoire comprising a single light chain and diverse heavy chain sequences. The resulting cloned antibody sequences are subsequently expressed in a cell, such as a CHO cell. Alternatively, DNA encoding the antigen-specific chimeric antibodies or the variable domains of the light and heavy chains are identified directly from antigen-specific lymphocytes.
[00221] Initially, high affinity chimeric antibodies are isolated having a human variable region and a mouse constant region. As described above, the antibodies are characterized and selected for desirable characteristics, including affinity, selectivity, epitope, etc. The mouse constant regions are replaced with a desired human constant region to generate the fully human antibody containing a somatically mutated human heavy chain and a single light chain derived from a rearranged human germline light chain region of the invention.
Suitable human constant regions include, for example wild type or modified lgG1 or lgG4.
[00222] Separate cohorts of VELOCIMMUNE® mice containing a replacement of the endogenous mouse heavy chain locus with human VH, DH, and JH gene segments and a replacement of the endogenous mouse κ light chain locus with either the engineered germline VK1-39JK5 human light chain region or the engineered germline VK3-20JK1 human light chain region (described above) were immunized with a human cell-surface receptor protein (Antigen E). Antigen E is administered directly onto the hind footpad of mice with six consecutive injections every 3-4 days. Two to three micrograms of Antigen E are mixed with 10 pg of CpG oligonucleotide (Cat # tlrl-modn - ODN1826 oligonucleotide ; InVivogen, San Diego, CA) and 25 pg of Adju-Phos (Aluminum phosphate gel adjuvant, Cat# H-71639-250; Brenntag Biosector, Frederikssund, Denmark) prior to injection. A total of six injections are given prior to the final antigen recall, which is given 3-5 days prior to sacrifice. Bleeds after the 4th and 6th injection are collected and the antibody immune response is monitored by a standard antigen-specific immunoassay.
[00223] When a desired immune response is achieved splenocytes are harvested and fused with mouse myeloma cells to preserve their viability and form hybridoma cell lines. The hybridoma cell lines are screened and selected to identify cell lines that produce Antigen E-specific common light chain antibodies. Using this technique several anti-Antigen E-specific common light chain antibodies (i.e., antibodies possessing human heavy chain variable domains, the same human light chain variable domain, and mouse constant domains) are obtained.
[00224] Alternatively, anti-Antigen E common light chain antibodies are isolated directly from antigen-positive B cells without fusion to myeloma cells, as described in U.S.
2007/0280945A1. Using this method, several fully human anti-Antigen E common light chain antibodies (i.e., antibodies possessing human heavy chain variable domains, either an engineered human VK1-39JK5 light chain or an engineered human VK3-20JK1 light chain region, and human constant domains) were obtained. [00225] The biological properties of the exemplary anti-Antigen E common light chain antibodies generated in accordance with the methods of this Example are described in detail in the sections set forth below.
Example 6
Heavy Chain Gene Segment Usage in Antigen-Specific
Common Light Chain Antibodies
[00226] To analyze the structure of the human anti-Antigen E common light chain antibodies produced, nucleic acids encoding heavy chain antibody variable regions were cloned and sequenced. From the nucleic acid sequences and predicted amino acid sequences of the antibodies, gene usage was identified for the heavy chain variable region (HCVR) of selected common light chain antibodies obtained from immunized
VELOCIMMUNE® mice containing either the engineered human VK1-39JK5 light chain or engineered human VK3-20JK1 light chain region. Results are shown in Tables 5 and 6, which demonstrate that mice according to the invention generate antigen-specific common light chain antibodies from a variety of human heavy chain gene segments, due to a variety of rearrangements, when employing either a mouse that expresses a light chain from only a human VK1-39- or a human VK3-20-derived light chain. Human VH gene segments of the 2, 3, 4, and 5 families rearranged with a variety of human DH segments and human JH segments to yield antigen-specific antibodies.
Figure imgf000058_0001
Figure imgf000059_0001
Example 7
Determination of Blocking Ability of Antigen-Specific Common Light Chain Antibodies by LUMINEX™ Assay
[00227] Ninety-eight human common light chain antibodies raised against Antigen E were tested for their ability to block binding of Antigen E's natural ligand (Ligand Y) to Antigen E in a bead-based assay.
[00228] The extracellular domain (ECD) of Antigen E was conjugated to two myc epitope tags and a 6X histidine tag (Antigen E-mmH) and amine-coupled to carboxylated
microspheres at a concentration of 20 g/mL in MES buffer. The mixture was incubated for two hours at room temperature followed by bead deactivation with 1 M Tris pH 8.0 followed by washing in PBS with 0.05% (v/v) Tween-20. The beads were then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 2% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO). In a 96-well filter plate, supernatants containing Antigen E-specific common light chain antibodies, were diluted 1 :15 in buffer. A negative control containing a mock supernatant with the same media components as for the antibody supernatant was prepared. Antigen E- labeled beads were added to the supernatants and incubated overnight at 4°C. Biotinylated- Ligand Y protein was added to a final concentration of 0.06 nM and incubated for two hours at room temperature. Detection of biotinylated-Ligand Y bound to Antigen E-myc-myc-6His labeled beads was determined with R-Phycoerythrin conjugated to Streptavidin (Moss Inc, Pasadena, MD) followed by measurement in a LUMINEX™ flow cytometry-based analyzer. Background Mean Fluorescence Intensity (MFI) of a sample without Ligand Y was subtracted from all samples. Percent blocking was calculated by division of the background- subtracted MFI of each sample by the adjusted negative control value, multiplying by 100 and subtracting the resulting value from 100.
[00229] In a similar experiment, the same 98 human common light chain antibodies raised against Antigen E were tested for their ability to block binding of Antigen E to Ligand Y-labeled beads.
[00230] Briefly, Ligand Y was amine-coupled to carboxylated microspheres at a concentration of 20 g/mL diluted in MES buffer. The mixture and incubated two hours at room temperature followed by deactivation of beads with 1 M Tris pH 8 then washing in PBS with 0.05% (v/v) Tween-20. The beads were then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 2% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO). In a 96-well filter plate, supernatants containing Antigen E-specific common light chain antibodies were diluted 1 :15 in buffer. A negative control containing a mock supernatant with the same media components as for the antibody supernatant was prepared. A biotinylated-Antigen E- mmH was added to a final concentration of 0.42 nM and incubated overnight at 4°C. Ligand Y-labeled beads were then added to the antibody/Antigen E mixture and incubated for two hours at room temperature. Detection of biotinylated-Antigen E-mmH bound to Ligand Y- beads was determined with R-Phycoerythrin conjugated to Streptavidin (Moss Inc,
Pasadena, MD) followed by measurement in a LUMINEX™ flow cytometry-based analyzer. Background Mean Fluorescence Intensity (MFI) of a sample without Antigen E was subtracted from all samples. Percent blocking was calculated by division of the background- subtracted MFI of each sample by the adjusted negative control value, multiplying by 100 and subtracting the resulting value from 100.
[00231] Tables 7 and 8 show the percent blocking for all 98 anti-Antigen E common light chain antibodies tested in both LUMINEX™ assays. ND: not determined under current experimental conditions.
Figure imgf000061_0001
Figure imgf000062_0001
Figure imgf000063_0001
[00232] In the first LUMINEX™ experiment described above, 80 common light chain antibodies containing the VK1 -39J 5 engineered light chain were tested for their ability to block Ligand Y binding to Antigen E-labeled beads. Of these 80 common light chain antibodies, 68 demonstrated >50% blocking, while 12 demonstrated <50% blocking (6 at 25- 50% blocking and 6 at <25% blocking). For the 18 common light chain antibodies containing the VK3-20JK1 engineered light chain, 12 demonstrated >50% blocking, while 6
demonstrated <50% blocking (3 at 25-50% blocking and 3 at <25% blocking) of Ligand Y binding to Antigen E-labeled beads.
[00233] In the second LUMINEX™ experiment described above, the same 80 common light chain antibodies containing the VK1-39JK5 engineered light chain were tested for their ability to block binding of Antigen E to Ligand Y-labeled beads. Of these 80 common light chain antibodies, 36 demonstrated >50% blocking, while 44 demonstrated <50% blocking (27 at 25-50% blocking and 17 at <25% blocking). For the 18 common light chain antibodies containing the VK3-20JK1 engineered light chain, 1 demonstrated >50% blocking, while 17 demonstrated <50% blocking (5 at 25-50% blocking and 12 at <25% blocking) of Antigen E binding to Ligand Y-labeled beads. [00234] The data of Tables 7 and 8 establish that the rearrangements described in Tables 5 and 6 generated anti-Antigen E-specific common light chain antibodies that blocked binding of Ligand Y to its cognate receptor Antigen E with varying degrees of efficacy, which is consistent with the anti-Antigen E common light chain antibodies of Tables 5 and 6 comprising antibodies with overlapping and non-overlapping epitope specificity with respect to Antigen E.
Example 8
Determination of Blocking Ability of Antigen-Specific
Common Light Chain Antibodies by ELISA
[00235] Human common light chain antibodies raised against Antigen E were tested for their ability to block Antigen E binding to a Ligand Y-coated surface in an ELISA assay.
[00236] Ligand Y was coated onto 96-well plates at a concentration of 2 Mg/mL diluted in PBS and incubated overnight followed by washing four times in PBS with 0.05% Tween-20. The plate was then blocked with PBS (Irvine Scientific, Santa Ana, CA) containing 0.5% (w/v) BSA (Sigma-Aldrich Corp., St. Louis, MO) for one hour at room temperature. In a separate plate, supernatants containing anti-Antigen E common light chain antibodies were diluted 1 : 10 in buffer. A mock supernatant with the same components of the antibodies was used as a negative control. Antigen E-mmH (described above) was added to a final concentration of 0.150 nM and incubated for one hour at room temperature. The
antibody/Antigen E-mmH mixture was then added to the plate containing Ligand Y and incubated for one hour at room temperature. Detection of Antigen E-mmH bound to Ligand Y was determined with Horse-Radish Peroxidase (HRP) conjugated to anti-Penta-His antibody (Qiagen, Valencia, CA) and developed by standard colorimetric response using tetramethylbenzidine (TMB) substrate (BD Biosciences, San Jose, CA) neutralized by sulfuric acid. Absorbance was read at OD450 for 0.1 sec. Background absorbance of a sample without Antigen E was subtracted from all samples. Percent blocking was calculated by division of the background-subtracted MFI of each sample by the adjusted negative control value, multiplying by 100 and subtracting the resulting value from 100.
[00237] Tables 9 and 10 show the percent blocking for all 98 anti-Antigen E common light chain antibodies tested in the ELISA assay. ND: not determined under current experimental conditions.
Figure imgf000065_0001
Figure imgf000066_0001
[00238] As described in this Example, of the 80 common light chain antibodies containing the VK1-39JK5 engineered light chain tested for their ability to block Antigen E binding to a Ligand Y-coated surface, 22 demonstrated >50% blocking, while 58 demonstrated <50% blocking (20 at 25-50% blocking and 38 at <25% blocking). For the 18 common light chain antibodies containing the VK3-20JK1 engineered light chain, one demonstrated >50% blocking, while 17 demonstrated <50% blocking (5 at 25-50% blocking and 12 at <25% blocking) of Antigen E binding to a Ligand Y-coated surface.
[00239] These results are also consistent with the Antigen E-specific common light chain antibody pool comprising antibodies with overlapping and non-overlapping epitope specificity with respect to Antigen E.
Example 9
BIACORE™ Affinity Determination for Antigen-Specific
Common Light Chain Antibodies
[00240] Equilibrium dissociation constants (KD) for selected antibody supernatants were determined by SPR (Surface Plasmon Resonance) using a BIACORE™ T100 instrument (GE Healthcare). All data was obtained using HBS-EP (10mM Hepes, 150mM NaCI, 0.3mM EDTA, 0.05% Surfactant P20, pH 7.4) as both the running and sample buffers, at 25°C. Antibodies were captured from crude supernatant samples on a CM5 sensor chip surface previously derivatized with a high density of anti-human Fc antibodies using standard amine coupling chemistry. During the capture step, supernatants were injected across the anti- human Fc surface at a flow rate of 3 pL/min, for a total of 3 minutes. The capture step was followed by an injection of either running buffer or analyte at a concentration of 100 nM for 2 minutes at a flow rate of 35 pL/min. Dissociation of antigen from the captured antibody was monitored for 6 minutes. The captured antibody was removed by a brief injection of 10 mM glycine, pH 1.5. All sensorgrams were double referenced by subtracting sensorgrams from buffer injections from the analyte sensorgrams, thereby removing artifacts caused by dissociation of the antibody from the capture surface. Binding data for each antibody was fit to a 1 :1 binding model with mass transport using BIAcore T100 Evaluation software v2.1. Results are shown in Tables 1 1 and 12.
Figure imgf000067_0001
Figure imgf000068_0001
Figure imgf000069_0001
[00241] The binding affinities of common light chain antibodies comprising the
rearrangements shown in Tables 5 and 6 vary, with nearly all exhibiting a KD in the nanomolar range. The affinity data is consistent with the common light chain antibodies resulting from the combinatorial association of rearranged variable domains described in Tables 5 and 6 being high-affinity, clonally selected, and somatically mutated. Coupled with data previously shown, the common light chain antibodies described in Tables 5 and 6 comprise a collection of diverse, high-affinity antibodies that exhibit specificity for one or more epitopes on Antigen E.
Example 10
Determination of Binding Specificities of Antigen-Specific Common Light Chain Antibodies by LUMINEX™ Assay
[00242] Selected anti-Antigen E common light chain antibodies were tested for their ability to bind to the ECD of Antigen E and Antigen E ECD variants, including the
cynomolgous monkey ortholog (Mf Antigen E), which differs from the human protein in approximately 10% of its amino acid residues; a deletion mutant of Antigen E lacking the last 10 amino acids from the C-terminal end of the ECD (Antigen E-ACT); and two mutants containing an alanine substitution at suspected locations of interaction with Ligand Y
(Antigen E-Ala1 and AntigenE-Ala2). The Antigen E proteins were produced in CHO cells and each contained a myc-myc-His C-terminal tag.
[00243] For the binding studies, Antigen E ECD protein or variant protein (described above) from 1 mL of culture medium was captured by incubation for 2 hr at room
temperature with 1 x 106 microsphere (LUMINEX™) beads covalently coated with an anti- myc monoclonal antibody (MAb 9E10, hybridoma cell line CRL-1729™; ATCC, Manassas, VA). The beads were then washed with PBS before use. Supernatants containing anti- Antigen E common light chain antibodies were diluted 1 :4 in buffer and added to 96-well filter plates. A mock supernatant with no antibody was used as negative control. The beads containing the captured Antigen E proteins were then added to the antibody samples (3000 beads per well) and incubated overnight at 4°C. The following day, the sample beads were washed and the bound common light chain antibody was detected with a R-phycoerythrin- conjugated anti-human IgG antibody. The fluorescence intensity of the beads
(approximately 100 beads counted for each antibody sample binding to each Antigen E protein) was measured with a LUMINEX™ flow cytometry-based analyzer, and the median fluorescence intensity (MFI) for at least 100 counted beads per bead/antibody interaction was recorded. Results are shown in Tables 13 and 14.
Figure imgf000070_0001
Figure imgf000071_0001
Figure imgf000072_0001
[00244] The anti-Antigen E common light chain antibody supernatants exhibited high specific binding to the beads linked to Antigen E-ECD. For these beads, the negative control mock supernatant resulted in negligible signal (<10 MFI) when combined with the Antigen E-ECD bead sample, whereas the supernatants containing anti-Antigen E common light chain antibodies exhibited strong binding signal (average MFI of 2627 for 98 antibody supernatants; MFI > 500 for 91/98 antibody samples). [00245] As a measure of the ability of the selected anti-Antigen E common light chain antibodies to identify different epitopes on the ECD of Antigen E, the relative binding of the antibodies to the variants were determined. All four Antigen E variants were captured to the anti-myc LUMINEX™ beads as described above for the native Antigen E-ECD binding studies, and the relative binding ratios
Figure imgf000073_0001
were determined. For 98 tested common light chain antibody supernatants shown in Tables 12 and 13, the average ratios
Figure imgf000073_0002
differed for each variant, likely reflecting different capture amounts of proteins on the beads (average ratios of 0.61 , 2.9, 2.0, and 1.0 for Antigen E- Antigen E-Ala1 , Antigen E-Ala2, and Mf Antigen E, respectively). For each protein variant, the binding for a subset of the 98 tested common light chain antibodies showed greatly reduced binding, indicating sensitivity to the mutation that characterized a given variant. For example, 19 of the common light chain antibody samples bound to the Mf Antigen E with
Figure imgf000073_0003
of <8%. Since many in this group include high or moderately high affinity antibodies (5 with KD < 5nM, 15 with KD < 50 nM), it is likely that the lower signal for this group results from sensitivity to the sequence (epitope) differences between native Antigen E-ECD and a given variant rather than from lower affinities.
[00246] These data establish that the common light chain antibodies described in Tables 5 and 6 represent a diverse group of Antigen-E-specific common light chain antibodies that specifically recognize more than one epitope on Antigen E.
Example 11
Light Chain Shuffling in Common Light Chain Antibodies
[00247] Heavy chains of selected antigen-specific common light chain antibodies were tested for binding to Antigen E after repairing the heavy chains with either a germline VK1 - 39JK5 or a germline VK3-20JK1 engineered light chain (as described in Example 1 ).
[00248] Briefly, 247 heavy chains of Antigen E-specific common light chain antibodies (VK1 -39JK5 and VK3-20JK1 ) were transfected with either a germline VK1 -39 or a germline V 3-20 engineered light chain and rescreened for binding to Antigen E by a LUMINEX™ assay (as described in Example 7 and Example 1 0). Binding to Antigen E was confirmed by BIACORE™ (as described in Example 9). The results are shown in Table 1 5.
[00249] As shown in this Example, twenty-eight common light chain antibodies specific for Antigen E were capable of binding to Antigen E when repaired with a germline form of the light chain.
Figure imgf000074_0001
Example 12
Heavy Chain Gene Usage and Somatic Hypermutation Frequency in Common Light Chain Antibodies
[00250] Heavy and light chain sequences (>6000) of antibodies raised in
VELCOIMMUNE® mice (e.g., US 6,596,541 and US 7, 1 05,348) were compiled with heavy and light chain sequences (>600) of common light chain antibodies obtained by a multi- antigen immunization scheme employing the engineered light chain mice (described above) to compare heavy chain gene segment usage and somatic hypermutation frequencies of the antibody chains.
[00251] Heavy Chain Gene Usage. Heavy and light chain sequences obtained from VELOCIMMUNE® mice containing a replacement of the endogenous mouse heavy chain locus with human VH, DH, and JH gene segments and a replacement of the endogenous mouse K light chain locus with either the engineered germline VK1 -39JK5 human light chain region or the engineered germline VK3-20J 1 human light chain region (as described in Example 2) immunized with a human cell-surface receptor (Antigen E), a heterodimer of two human cell-surface glycoproteins (Antigen F), a human cytokine receptor (Antigen G) and a human tumor differentiation antigen (Antigen H) were analyzed for heavy chain gene segment usage and VH and JH gene segments were recorded. Results are shown in Tables 16 - 18. Percentages in Tables 16 - 18 represent rounded values and in some cases may not equal 100% when added together.
[00252] Table 16 sets forth the percent heavy chain family usage for antibodies from VELCOIMMUNE® mice (VI), antibodies from VELCOIMMUNE® mice having a cognate VK1- 39 light chain (VI - VK1-39), antibodies from VK1 -39 engineered light chain mice (VK1 -39), antibodies from VELCOIMMUNE® mice having a cognate VK3-20 light chain (VI - 3-20), and antibodies from 3-20 engineered light chain mice ( 3-20). Table 17 sets forth the percent VH and JH gene usage for antibodies from VELCOIMMUNE® mice (VI), antibodies from VELCOIMMUNE® mice having a cognate VK1-39 light chain (VI - VK1-39), antibodies from VK1-39 engineered light chain mice ( 1-39), antibodies from VELCOIMMUNE® mice having a cognate 3-20 light chain (VI - 3-20), and antibodies from V 3-20 engineered light chain mice ( 3-20). Table 18 sets forth the percent VH gene usage for antibodies from VK1-39 engineered light chain mice (VK1-39 Mice) from each immunization group (Antigens E, F, G and H) and the percent VH gene usage for antibodies from VK3-20 engineered light chain mice (VK3-20 Mice) from selected immunization groups (Antigens E and G).
[00253] As shown in this Example, heavy chain gene usage for antigens tested in VK1- 39JK5 engineered light chain mice was characterized by a preponderance of VH family III subgroups (VH3-7, VH3-9, VH3-11 , VH3-13, VH3-20, VH3-23, VH3-30, VH3-33 and VH3-48). Notable usage of other VH family subgroups was characterized by usage of VH1-18, VH1-69, VH2-5, VH4-59 and VH6-1. For antigens tested in VK3-20JK1 engineered light chain mice, heavy chain gene usage was characterized by a preponderance of VH family III, VH family IV and VH family V subgroups (VH3-1 1 , VH3-30, VH3-33, VH4-39, VH4-59 and VH5-51 ). Notable usage of other VH family subgroups was characterized by usage of VH1-18, VH1 -69, VH2-70 and VH6-1.
[00254] Somatic Hypermutation Frequency. Heavy and light chains from antibodies raised in VELCOIMMUNE® mice and the engineered light chain mice (described above) were aligned to germline sequences according to the heavy and light chain gene usage demonstrated for each heavy and/or light chain. Amino acid changes for each framework region (FW) and complementarity determining region (CDR) for both heavy and light chain of each sequence were calculated. Results are shown in Tables 19 - 22. Percentages in Tables 21 - 24 represent rounded values and in some cases may not equal 100% when added together.
[00255] Table 19 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VELCOIMMUNE® mice, heavy chains of antibodies from VK1-39 engineered light chain mice ( VK1-39 Mice) and heavy chains of antibodies from VK3-20 engineered light chain mice (VK3-20 Mice). Table 20 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of light chains of antibodies from VELCOIMMUNE® mice, the light chain of antibodies from VK1 -39 engineered mice (VK1 -39 Mice) and the light chain of antibodies from VK3-20 engineered mice (VK3-20 Mice). Table 21 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VK1-39 engineered light chain mice (VK1 -39 Mice) for selected immunization groups (Antigens E, F and H). Table 22 sets forth the number of amino acid (AA) changes observed in each FW and CDR region of heavy chains of antibodies from VK3-20 engineered light chain mice (VK3-20 Mice) for selected immunization groups (Antigens E and G).
Figure imgf000076_0001
Figure imgf000077_0001
Figure imgf000078_0001
Figure imgf000079_0001
Figure imgf000080_0001
Figure imgf000081_0001
Figure imgf000082_0001

Claims

What is claimed is:
1 . A mouse that expresses a population of antigen-specific antibodies in response to challenge with an antigen, wherein all of the immunoglobulin light chains of the population of antigen-specific antibodies comprise a human light chain variable (VL) region derived from the same single human Vu gene segment and the immunoglobulin heavy chains comprise a human heavy chain variable (VH) region derived from a human VH gene segment selected from VH1-2, VH1-3, VH1 -8, VH1-18, VH1-24, VH1-46, VH1-58, VH1-69, VH2-5, VH2-26, VH2-70, VH3-7, VH3-9, VH3-11 , VH3-13, VH3-15, VH3-20, VH3-21 , VH3-23, VH3-30, VH3-33, VH3-43, VH3-48, VH3-53, VH3-64, VH3-72, VH3-73, VH4-31 , VH4-34, VH4-39, VH4-59, VH5-51 , VH6-1.
2. The mouse of claim 1 , wherein the same single human VL gene segment is a human VK1-39 gene segment.
3. The mouse of claim 1 , wherein the same single human VL gene segment is a human VK3-20 gene segment.
4. The mouse of claim 1 , wherein all of the immunoglobulin light chains comprise a human light chain J (JL) gene segment.
5. The mouse of claim 4, wherein the human JL gene segment is selected from a human JK1 and a JK5 gene segment.
6. The mouse of claim 1 , wherein the mouse lacks a sequence selected from a mouse immunoglobulin VL gene segment, a mouse immunoglobulin JL gene segment, and a combination thereof.
7. The mouse of claim 1 , wherein the human VL region is operably linked to a human, mouse, or rat immunoglobulin light chain constant (CL) region.
8. The mouse of claim 1 , wherein the human VL region is expressed from an endogenous immunoglobulin light chain locus.
9. The mouse of claim 1 , wherein the human VH region is operably linked to a human, mouse, or rat immunoglobulin heavy chain constant (CH) region.
10. The mouse of claim 1 , wherein the human VH region is expressed from an endogenous immunoglobulin heavy chain locus.
1 1. A mouse that expresses a population of antigen-specific antibodies in response to challenge with an antigen, wherein all of the immunoglobulin light chains of the population of antigen-specific antibodies comprise a human VL region derived from a human VK1-39 gene segment and the immunoglobulin heavy chains comprise a human heavy chain variable (VH) region derived from a human VH gene segment selected from VH1-18, VH1-69, VH2-5, VH3-9, VH3-13, VH3-15, VH3-20, VH3-23, VH3-30, VH3-48, VH3-53, VH3-64, VH4-31 , VH4-34, VH4-39, VH4-59, VH5-51 and VH6-1.
12. The mouse of claim 1 1 , wherein the human VL region comprises a JK5 sequence.
13. The mouse of claim 11 , wherein the mouse lacks a mouse immunoglobulin VL and/or JL gene segment.
14. The mouse of claim 11 , wherein the human VL region is operably linked to a human, rat, or mouse immunoglobulin light chain constant (CL) region.
15. The mouse of claim 11 , wherein the human VL region is expressed from an endogenous immunoglobulin light chain locus.
16. The mouse of claim 11 , wherein the human VH region comprises a sequence that encodes a human JH region selected from a human JH1 , JH2, JH3, JH4, JH5, and JH6 gene segment.
17. The mouse of claim 1 1 , wherein the human VH region is operably linked to a human, rat, or mouse immunoglobulin heavy chain constant (CH) region.
18. The mouse of claim 11 , wherein the human VH region is expressed from an endogenous immunoglobulin heavy chain locus.
19. A mouse that expresses a population of antigen-specific antibodies in response to challenge with an antigen, wherein all of the immunoglobulin light chains of the population of antigen-specific antibodies comprise a human VL region derived from a human VK3-20 gene segment and the immunoglobulin heavy chains comprise a human heavy chain variable (VH) region derived from a human VH gene segment selected from VH1 -18, VH1-69, VH2-70, VH3- 11 , VH3-30, VH3-33, VH3-53, VH4-39, VH4-59, VH5-51 and VH6-1.
20. The mouse of claim 19, wherein the human VL region comprises a JK5 sequence.
21. The mouse of claim 19, wherein the mouse lacks a mouse immunoglobulin VL and/or JL gene segment.
22. The mouse of claim 19, wherein the human VL region is operably linked to a human, rat, or mouse immunoglobulin light chain constant (CL) region.
23. The mouse of claim 19, wherein the human VL region is expressed from an endogenous immunoglobulin light chain locus.
24. The mouse of claim 19, wherein the human VH region comprises a sequence that encodes a human JH region selected from a human JH2, JH3, JH4, JH5, and JH6 gene segment.
25. The mouse of claim 19, wherein the human VH region is operably linked to a human, rat, or mouse immunoglobulin heavy chain constant (CH) region.
26. The mouse of claim 19, wherein the human VH region is expressed from an endogenous immunoglobulin heavy chain locus.
27. A method for making a genetically modified mouse is provided, comprising replacing all or substantially all mouse VH gene segments at the endogenous mouse heavy chain locus with human VH gene segments; wherein the mouse is genetically modified to comprise no more than one or two rearranged human light chain VL/J|_ sequences replacing all mouse light chain gene segments; wherein the human heavy chain variable gene segments are linked to a mouse constant gene, and the rearranged human light chain sequences are linked to a human or mouse constant gene; wherein the human VH gene segments are selected from VH1-2, VH1 -3, VH1-8, VH1-18, VH1 -24, VH1 -46, VH1-58, VH1-69, VH2-5, VH2-26, VH2-70, VH3-7, VH3-9, VH3-11 , VH3-13, VH3-15, VH3-20, VH3-21 , VH3-23, VH3-30, VH3-33, VH3-43, VH3-48, VH3-53, VH3-64, VH3-72, VH3-73, VH4-31 , VH4-34, VH4-39, VH4-59, VH5-51 , VH6-1 , and a combination thereof.
28. The method of claim 27, wherein the two rearranged human light chain VL/J.L gene segments comprise a rearranged VK1-39/J, a rearranged VK3-20/J, and a combination thereof.
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