WO2016126632A1 - High affinity vitamin d3 binding proteins - Google Patents
High affinity vitamin d3 binding proteins Download PDFInfo
- Publication number
- WO2016126632A1 WO2016126632A1 PCT/US2016/016054 US2016016054W WO2016126632A1 WO 2016126632 A1 WO2016126632 A1 WO 2016126632A1 US 2016016054 W US2016016054 W US 2016016054W WO 2016126632 A1 WO2016126632 A1 WO 2016126632A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- seq
- polypeptide
- amino acid
- acid sequence
- vitamin
- Prior art date
- Legal status (The legal status 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 status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/82—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving vitamins or their receptors
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K38/00—Medicinal preparations containing peptides
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/435—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
- C07K14/46—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates
- C07K14/47—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates from mammals
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/5005—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells
- G01N33/5008—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving human or animal cells for testing or evaluating the effect of chemical or biological compounds, e.g. drugs, cosmetics
- G01N33/5082—Supracellular entities, e.g. tissue, organisms
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2800/00—Detection or diagnosis of diseases
- G01N2800/10—Musculoskeletal or connective tissue disorders
- G01N2800/101—Diffuse connective tissue disease, e.g. Sjögren, Wegener's granulomatosis
- G01N2800/104—Lupus erythematosus [SLE]
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2800/00—Detection or diagnosis of diseases
- G01N2800/28—Neurological disorders
- G01N2800/2842—Pain, e.g. neuropathic pain, psychogenic pain
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2800/00—Detection or diagnosis of diseases
- G01N2800/28—Neurological disorders
- G01N2800/285—Demyelinating diseases; Multipel sclerosis
Definitions
- Cholecalciferol also known as toxiferol
- vitamin D also called vitamin D3. It is structurally similar to steroids such as testosterone, cholesterol, and Cortisol.
- Vitamin D metabolites have been identified as potential clinical markers for autoimmune and chronic diseases such as multiple scelerosis, lupus, and fibromyalgia.
- 25- Hydroxychoiecalciferol 25-D3
- the hormonally active variant form of Vitamin D3 is clinically relevant and of interest for several indications.
- Assays that detect and molecules and devices that specifically bind to vitamin D3 and its metabolites.
- the invention provides isolated polypeptides comprising a polypeptide at least 70% identical over the ful l length of the amino acid sequen ce of SEQ ID NO: 1 . In other embodiments, the polypeptide is at least 80% or 90% identical over the full length of the amino acid sequence of SEQ ID NO: 1. In other embodiments, the polypeptide comprises the amino acid sequence of SEQ ID NO:2 or SEQ ID NO:3. In various further embodiment, the polypeptide comprises the amino acid sequence of a peptide selected from the group consisting of SEQ ID NOS: 1-230. In another aspect, the invention provides isolated polypeptides comprising the amino acid sequence of SEQ ID NO: 231 or 232. In one embodiment, the polypeptides of the invention may comprise a detectable tag.
- the invention provides isolated nucleic acids encoding the polypeptide of any embodiment of the invention.
- the invention provides recombinant expression vector comprising an isolated nucleic acid of the invention operably linked to a control sequence.
- the invention provides recombinant host cells comprising the recombinant expression vector of the invention.
- the invention provides methods for detecting vitamin D3 or one of its metabolites, comprising:
- Figure I A) Fluorescence polarization data for 25-D3 binder CDL2, showing an approximate Kd of 2. !uM.
- Figure 2 A) An alignment between the crystal structure of CDL2.1 and the original model CDL2 with 25-D3 docked in. The RMSD is 1.066 ° A. B) Crystal structure of CDL2.1 demonstrating the presence of water in the hydrogen bonding interaction. C) Surface representation of CDL2. D) Surface representation of the crystal structure of CDL2.1.
- Figure 3 Rosetta docking plot of 25-D3 docked into several structures.
- the y-axis represents the Rosetta interface energy and the x-axis represents the root mean squared deviation of the final positions of each docking trajectory to the iigand position in the CDL2.1 crystal structure.
- amino acid residues are abbreviated as follows: alanine (Ala; A), asparagine (Asn; N), aspartic acid (Asp; D), arginine (Arg; R), cysteine (Cys; C), glutamic acid (Glu; E), giutamme (Gin; Q), glycine (Gly; G), histidme (His; H), isoieucine (He; I), leucine (Leu; L), lysine (Lys; K), methionine (Met; M), phenylalanine (Phe; F), proline (Pro; P), serine (Ser; S), threonine (Thr; T), tryptophan (Trp; W), tyrosine (Tyr; Y), and valine (Val; V).
- polypeptide is used in its broadest sense to refer to a sequence of subunit amino acids.
- the polypeptides of the invention may comprise L-amino acids, D-amino acids (which are resistant to L-amino acid- specific proteases in vivo), or a combination of D- and L-amino acids.
- the polypeptides described herein may be chemically synthesized or recombinantly expressed.
- the polypeptides may be linked to other compounds to promote an increased half-life in vivo, such as by PEGylation, HESylation, PASylation, glycosylation, etc. Such linkage can be covalent or non-covalent as is understood by those of skill in the art.
- the invention provides isolated polypeptides comprising or consisting of a polypeptide at least 70% identical over the full length of the amino acid sequence of SEQ ID NO: I (see Table 1) Residues AAs
- the polypeptides of all aspects/embodiments of the invention bind to D3 and to 25- Hydroxyeholeealeiferol (25-D3) and can thus be used, for example, in the context of biosensors for specific quantification of vitamin D3 and 25-D3.
- the polypeptides of the inveniion provide a cheaper, selective alternative to currently used antibodies.
- Hie polypeptides of the invention are at least 70% identical with to the amino acid sequence of SEQ ID NO: 1 over its full length.
- polypeptides of the invention are at least 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical with to the amino acid sequence of SEQ ID NO: 1 over its full length.
- the isolated peptides comprising or consisting of the amino acid sequence in SEQ ID NO:2 (see Table 2).
- the isolated polype ptides comprising or consisting of the acid sequence of SEQ ID NO:3 (see Table 3).
- Polypeptides within the scope of SEQ ID NOS:2-3 show particularly strong binding to and selectivity for 25-D3 as shown via yeast surface display.
- the isolated polypeptides comprises or consists of a peptide with an amino acid sequence selected from the group consisting of the following, each of which is believed to bind to 25-D3 and/or D3 generated via homology, related proteins, or sequences obtained from library sorting that showed a signal on yeast:
- GQSA EAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDV ' AGKYVVVWRK GQDGGWKLYRTISNLDPAK (SEQ ID NO: 4)
- GQDGGWKLYRTISNLDPAK (SEQ ID NO: 5) 4424+ 106E Error Prone Neg Sort Mutant:
- GQSAKEA1EAALADFVK YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNIQKL QGLMDMGVSELKLTTLDVQESGDIAFESGSFSLKGPGKDSKLVDVAGKYVEVWRK GQDGGWKLYRTISNLDPAK (SEQ ID NO: 6)
- GQDGGWKLYRTISNLDPAK (SEQ ID NO: 9)
- GQDGDVVKLYRTISNLDLAK (SEQ ID NO: 1 1)
- GQDGGWKLYRTISNLDPAK SEQ ID NO: 12
- GQSA EAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRKG QDGGWKLYRAIANLDPAK (SEQ ID NO: 16)
- J lC-16 (CDL2.2); slightly truncated from HH35.vl/CDL2.1 QSAKEAIEAAI DFVKWNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLWQ GLMDMGVSEPKFTTLNVQKSGDFAFESGSFSLKGPGKDSKLVGIAGIYVEVWRKGQ DGGWKLYRTIANLGP (SEQ ID NO: 30) HH35v2:
- GQGGGWKLYRTIANLDPAK (SEQ ID NO:36).
- KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:59) GQSAKEAIEAALADFVKAYNSKDAAGLASKYMDDAAIFPLDMAPVDGRQN1 QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
- KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 70) AQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
- KYVE RKGQDGGRKLYRTIANLDPAK (SEQ ID NO:71 )
- KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO: 73)
- KYVE RKGQDGGW LYRTIANLDPAK (SEQ ID NO: 74)
- KYVGV ⁇ VRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 81) GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
- KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO: 82)
- KYVVW 7 RKGQDGGWKLY T RTISNLDPAK (SEQ ID NO:92)
- KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 1 14) GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
- KYVM RKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 115)
- KYVE RKGQDGGW LYRTTSNLDPAK (SEQ ID NO: l 17)
- KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 137)
- KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 138)
- KYVEVWRKGQDGGWKLYRnANLDPAK (SEQ ID NO: 3 58) GQSAKEAIEAALADFVKAYNSKDTTGVASKYMDDAAIFPLDMAPVDGRQNI
- KYVEVWRKGQDGGWKLYRTIANLDPAK SEQ ID NO: 180
- KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 199)
- KYVEVWRKGQDGGWKLYRTIANLDPAK SEQ ID NO:202
- the polypeptides of any embodiment of any aspect of the invention may further comprise a tag, such as a detectable moiety.
- the tag(s) can be linked to tlie polypeptide through covended bonding, including, but not limited to, disulfide bonding, hydrogen bonding, electrostatic bonding, nucleophilc (i.e. Cys, Lys) conjugation chemistry, recombinant fusion and conformational bonding.
- the tag(s) can be linked to the polypeptide by means of one or more linking compounds. Techniques for conjugating tags to polypeptides are well known to the skilled artisan.
- Polypeptides comprising a detectable tag can be used diagnostically to, for example, identify tlie presence of vitamin D3 or one of its metabolites or other steroid in a sample of interest. However, they may also be used for other detection and/or analytical and/or diagnostic purposes. Any suitable detection tag can be used, including but not limited to enzymes, prosthetic groups, fluorescent materials, luminescent materials, bioluminescent materials, radioactive materials, positron emitting metals, and nonradioactive paramagnetic metal ions.
- the tag used will depend on the specific detection/analysis/diagnosis techniques and/or methods used such as immunohistochemical staining of (tissue) samples, flow cytometric detection, scanning laser cytometric detection, fluorescent immunoassays, enzyme-linked immunosorbent assays (ELlSAs),
- radioimmunoassays RJAs
- bioassays e.g., neutralization assays
- Western blotting applications etc.
- Enzymes typically conjugated to polypeptides to permit their immunohistochemical visualization are well known and include, but are not limited to, acetylcholinesterase, alkaline phosphatase, beta-galactosidase, glucose oxidase, horseradish peroxidase, and urease.
- Typical substrates for production and deposition of visually detectable products are also well known to the skilled person in the art.
- polypeptides can be labeled using colloidal gold or they can be labeled with radioisotopes, such as 33P, 32P, 35S, 3H, and 1251.
- Polypeptides of the invention can be attached to radionuclides directly or indirectly via a chelating agent by methods well known in the art.
- the tag may comprise, for example, a fluorophore.
- fluorophore A wide variety of fluorophores useful for fluorescently labeling the polypeptides of the invention are known to the skilled artisan.
- the tag can comprise, for example, magnetic resonance imaging (MR!) contrast agents, such as gadolinium diethylenetriaminepentaacetic acid, to ultrasound contrast agents or to X-ray contrast agents, or by radioisotopic labeling.
- MR magnetic resonance imaging
- polypeptides of the invention can also be attached to solid supports, which are particularly useful for in vitro assays or purification of vitamin D3 or one of its metabolites.
- solid supports might be porous or nonporous, planar or nonplanar and include, but are not limited to, glass, cellulose, polyacrylamide, nylon, polystyrene, polyvinyl chloride or polypropylene supports.
- the polypeptides can also, for example, usefully be conjugated to filtration media, such as NHS-activated Sepharose or CNBr-activated Sepharose for purposes of affinity chromatography. They can also usefully be attached to paramagnetic
- microspheres typically by biotin-streptavidin interaction.
- polypeptides of the invention can usefully be attached to the surface of a microtiter plate for ELISA.
- the present invention provides isolated nucleic acids encoding a polypeptide of the present invention.
- the isolated nucleic acid sequence may comprise RNA or DNA.
- isolated nucleic acids are those that have been removed from their normal surrounding nucleic acid sequences in the genome or in cDNA sequences.
- Such isolated nucleic acid sequences may comprise additional sequences useful for promoting expression and/or purification of the encoded protein, including but not limited to poly A sequences, modified Kozak sequences, and sequences encoding epitope tags, export signals, and secretory signals, nuclear localization signals, and plasma membrane localization signals, It will be apparent to those of skill in the art, based on the teachings herein, what nucleic acid sequences will encode the polypeptides of the invention.
- the present invention provides recombinant expression vectors comprising the isolated nucleic acid of any aspect of the invention operatively linked to a suitable control sequence.
- Recombinant expression vector includes vectors that operatively link a nucleic acid coding region or gene to any control sequences capable of effecting expression of the gene product.
- Control sequences operably linked to the nucleic acid sequences of the invention are nucleic acid sequences capable of effecting the expression of the nucleic acid molecules. The control sequences need not be contiguous with the nucleic acid sequences, so long as they function to direct the expression thereof.
- intervening untranslated yet transcribed sequences can be present between a promoter sequence and the nucleic acid sequences and the promoter sequence can still be considered "operably linked" to the coding sequence.
- Other such control sequences include, but are not limited to, polyadenylation signals, termination signals, and ribosome binding sites.
- Such expression vectors can be of any type known in the art, including but not limited plasmid and viral-based expression vectors.
- control sequence used to drive expression of the disclosed nucleic acid sequences in a mammalian system may be constitutive (driven by any of a variety of promoters, including but not limited to, CMV, SV40, RSV, actin, EF) or inducible (driven by any of a number of inducible promoters including, but not limited to, tetracycline, ecdysone, steroid-responsive).
- inducible promoters including, but not limited to, tetracycline, ecdysone, steroid-responsive.
- the construction of expression vectors for use in transfecting prokaryotic cells is also well known in the art, and thus can be accomplished via standard techniques. (See, for example, Sambrook, Fritsch, and Maniatis, in: Molecular Cloning, A Laboratory Manual, Cold Spring Harbor Laboratory Press, 1989: Gene Transfer and Expression Protocols, pp.
- the expression vector must be replicable in the host organisms either as an episorne or by integration into host chromosomal DNA.
- the expression vector comprises a plasmid.
- the invention is intended to include other expression vectors that serve equivalent functions, such as viral vectors.
- the present invention provides host cells that have been transfected with the recombinant expression vectors disclosed herein, wherein the host ceils can be either prokaryotic (such as bacteria.) or eukaryotic. The cells can be transiently or stably transfected.
- transfection of expression vectors into prokaryotic and eukaryotic cells can be accomplished via any technique known in the art, including but not limited to standard bacterial transformations, calcium phosphate co-precipitation, electroporation, or liposome mediated-, DEAE dextran mediated-, polycationic mediated-, or viral mediated transfection.
- standard bacterial transformations calcium phosphate co-precipitation, electroporation, or liposome mediated-, DEAE dextran mediated-, polycationic mediated-, or viral mediated transfection.
- a method of producing a polypeptide according to the invention is an additional part of the invention. The method comprises the steps of (a) culturing a host according to this aspect of the invention under conditions conducive to the expression of the polypeptide, and (b) optionally, recovering the expressed polypeptide.
- the invention provides methods for detecting vitamin D3 or one of its metabolites, such as 25-D3, comprising contacting a sample of interest with a detectable polypeptide of the invention under suitable conditions for binding the detectable polypeptide to vitamin D3 or one of its metabolites (such as 25-D3) present in the sample to form a polypeptide- vitamin D3 (or, for example, a polypeptide-25-D3)) binding complex, and detecting the binding complex.
- the sample is a biological sample, including but not limited to blood, serum, nasal secretions, tissue or other biological material from a subject to be tested.
- the polypeptides of the invention for use in this aspect may comprise a conjugate as disclosed above, to provide a tag useful for any detection technique suitable for a given assay . The tag used will depend on the specific
- a carrier or substrate e.g., microtiter plates (ex: for ELISA), membranes and beads, etc.
- Carriers or substrates may be made of glass, plastic (e.g., polystyrene), polysaccharides, nylon, nitrocellulose, or teflon, etc.
- the surface of such supports may be solid or porous and of any convenient shape.
- the polypeptide is a polypeptide according to SEQ ID NQS:2-3, or SEQ ID NOS: 4-230, each of which include the V107E modification relative to CDL2, which is shown in the examples that follow to significantly increase specificity for 25 -D 3 relative to D3.
- the polypeptide comprises or consists of SEQ ID NOS: 29 or 30 (CDL2.1 or CDL2.2).
- the methods can be used for diagnosis, prognosis, and/or treatment monitoring of autoimmune or chronic diseases including but not limited to multiple sclerosis, systemic lupus erythematosus, and fibromyalgia.
- 25-D3 is the hormonally active form of vitamin D3, is a common target for medical diagnostics, and would benefit from a greater distinction between 25-D3 and chemically similar metabolites such as vitamin D3 and vitamin D2.
- the strategy to design a computational protocol to generate protein binders for hydrophobic small molecules focuses on high shape complementarity between the small molecule and the protein Initially, the small molecule of interest is placed into protein pockets with high shape complementarity and sampling is expanded by including crystal structures of the top scoring topologies. Due to experimental restrictions with labeling of the ligands, the orientation of linker is used as a filter to remove placements where the linker points into the protein and not out. Next, the iigand interaction is systematically sampled by generating spatial perturbations of its initial placement, in order to increase its shape complementarity between the protein and ligand. Optimization of small phvsicochemical interactions in this way can result in discrete amino acid identity changes and improves sampling of the sometimes jagged energy landscape.
- the interactions between the ligand and protein are optimized using the ROSETTA ENERGY® function and the potential designs are filtered e.g. on shape complementarity. Lastly, the computational designs are manually inspected and rational substitutions are tested using ROSETTA®. The computational protocol was tested on the hydrophobic ligand 25-hydroxycholecaliferol (25-D3) .
- CDL1 NTF2 topology
- CDL1 was evolved via error prone mutagenesis (ep-PCR) into a variant CDL1.1, which contains additional mutations P46S, R55A, H68P, and G136V
- P46S and II68P mutations are located near the entrance of the binding site where P46S makes a loop more flexible while H68P rigidities a loop.
- the two other mutations are distal to the binding pocket and seem to increase stability of the scaffold by e.g. increasing helix-helix packing (R55 A).
- the initial design has a Kd of approximately 2uM where the evolved variant has an improved affinity with an estimated Kd of 229nM
- specificity against the non-hydroxylated vitamin D3 would be an important distinction.
- the initial design CDL1 did not show a significant preference for D3- 25 over D3, however, the evolved variant CDL1.1 increased its specificity to about two fold over CDLl . (see ' Table 4).
- CDL1 6234
- CDL1.1 N3X-AD4 (Truncated as well as mutated from 6234 ⁇
- CDL2 was optimized using ep-PCR as well as small computationally guided library.
- the computationally guided library was constructed by docking the iigand into the binding site and optimizing the interactions between 25-D3 and the protein using ROSETTA®. To increase the sampling of the ligand, short MD simulations were performed to make small perturbations of the backbone.
- CDL2.1 were solved where the ligand was within 1.066 Armsd of the docked placement of the ligand.
Landscapes
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Immunology (AREA)
- Biomedical Technology (AREA)
- Molecular Biology (AREA)
- Medicinal Chemistry (AREA)
- General Health & Medical Sciences (AREA)
- Organic Chemistry (AREA)
- Biochemistry (AREA)
- Urology & Nephrology (AREA)
- Hematology (AREA)
- Proteomics, Peptides & Aminoacids (AREA)
- Cell Biology (AREA)
- Toxicology (AREA)
- Bioinformatics & Cheminformatics (AREA)
- Physics & Mathematics (AREA)
- Pathology (AREA)
- Biophysics (AREA)
- Gastroenterology & Hepatology (AREA)
- Biotechnology (AREA)
- Genetics & Genomics (AREA)
- General Physics & Mathematics (AREA)
- Microbiology (AREA)
- Analytical Chemistry (AREA)
- Food Science & Technology (AREA)
- Epidemiology (AREA)
- Animal Behavior & Ethology (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Pharmacology & Pharmacy (AREA)
- Tropical Medicine & Parasitology (AREA)
- Zoology (AREA)
- Peptides Or Proteins (AREA)
- Micro-Organisms Or Cultivation Processes Thereof (AREA)
Abstract
The present disclosure provides isolated polypeptides with vitamin D3 binding activity and methods for their use as detection agents. In another aspect, the invention provides recombinant expression vector comprising an isolated nucleic acid of the invention operably linked to a control sequence. In another aspect, the invention provides recombinant host cells comprising the recombinant expression vector of the invention. In another aspect, the invention provides methods for detecting vitamin D3 or one of its metabolites, such as 25-D3, comprising contacting a sample of interest with a detectable polypeptide of the invention.
Description
HIGH AFFINITY VITAMIN D3 BINDING PROTEINS
CROSS-REFERENCE
This application claims priority to U.S. Provisional Patent Application Serial No. 62/110,710 filed February 2, 2015, incorporated by reference herein in its entirety.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH
This invention was made with U.S. government support under HDTRA 1-10-1-0040, awarded by the Defense Threat Reduction Agency. The U.S. Government has certain rights in the invention.
BACKGROUND
Cholecalciferol, also known as toxiferol, is a form, of vitamin D, also called vitamin D3. It is structurally similar to steroids such as testosterone, cholesterol, and Cortisol.
Vitamin D metabolites have been identified as potential clinical markers for autoimmune and chronic diseases such as multiple scelerosis, lupus, and fibromyalgia. In particular, 25- Hydroxychoiecalciferol (25-D3), the hormonally active variant form of Vitamin D3 is clinically relevant and of interest for several indications. There is presently an unmet need for assays that detect and molecules and devices that specifically bind to vitamin D3 and its metabolites.
SUMMARY OF THE INVENTION
In a first aspect, the invention provides isolated polypeptides comprising a polypeptide at least 70% identical over the ful l length of the amino acid sequen ce of SEQ ID NO: 1 . In other embodiments, the polypeptide is at least 80% or 90% identical over the full length of the amino acid sequence of SEQ ID NO: 1. In other embodiments, the polypeptide comprises the amino acid sequence of SEQ ID NO:2 or SEQ ID NO:3. In various further embodiment, the polypeptide comprises the amino acid sequence of a peptide selected from the group consisting of SEQ ID NOS: 1-230. In another aspect, the invention provides isolated polypeptides comprising the amino acid sequence of SEQ ID NO: 231 or 232.
In one embodiment, the polypeptides of the invention may comprise a detectable tag.
In another aspect, the invention provides isolated nucleic acids encoding the polypeptide of any embodiment of the invention. In another aspect, the invention provides recombinant expression vector comprising an isolated nucleic acid of the invention operably linked to a control sequence. In anotlier aspect, the invention provides recombinant host cells comprising the recombinant expression vector of the invention.
In another aspect, the invention provides methods for detecting vitamin D3 or one of its metabolites, comprising:
(a) contacting a sample of interest with a polypeptide according to any one of claims 1 -9 under suitable conditions for binding the polypeptide to vitamin D3 or one of its metabolites present in the sample to form a polypeptide-vitamin D3 (or one of its metabolites) binding complex, and
(b) detecting the binding complex. BRIEF DESCRIPTION OF THE DRAWINGS
The foregoing aspects and many of the attendant advantages of this invention will become more readily appreciated as the same become better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
Figure I: A) Fluorescence polarization data for 25-D3 binder CDL2, showing an approximate Kd of 2. !uM. B) Yeast surface display and flow cytometry titration for evolved variant CDL2.1. Approximate Kd values are 319nM (black) for 25-D3 and 1 .9uM for vitamin D3 (red). C) Fluorescence polarization data for 25-D3 binder CDL2.2. The approximate Kd value is 188nM. D) A structure comparison between CDL2 and CDL2.1 highlighting mutations introduced into the binding pocket during evolution.
Figure 2: A) An alignment between the crystal structure of CDL2.1 and the original model CDL2 with 25-D3 docked in. The RMSD is 1.066° A. B) Crystal structure of CDL2.1 demonstrating the presence of water in the hydrogen bonding interaction. C) Surface representation of CDL2. D) Surface representation of the crystal structure of CDL2.1.
Figure 3: Rosetta docking plot of 25-D3 docked into several structures. A) Docking plot for the original design CDL2. B) Docking plot for a model variant that contains the evolved mutations of CDL2.1 in the backbone stracture of CDL2. C) Docking plot for crystal stracture of variant CDL2.1. For all plots, the y-axis represents the Rosetta interface energy
and the x-axis represents the root mean squared deviation of the final positions of each docking trajectory to the iigand position in the CDL2.1 crystal structure.
DETAILED DESCRIPTION
Definitions and explanations used in the present disclosure are meant and intended to be controlling in any future construction unless clearly and unambiguously modified in the following examples or when application of the meaning renders any construction meaningless or essentially meaningless. In cases where the construction of the term would render it meaningless or essentially meaningless, the definition should be taken from
Webster's Dictionary, 3rd Edition or a dictionary known to those of ordinary skill in the art, such as the Oxford Dictionary of Biochemistiy and Molecular Biology (Ed. Anthony Smith, Oxford University Press, Oxford, 2004).
The terms "a," "an," "the" and similar referents used in the context, of describing the invention (especially in the context of the following claims) are to be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context.
As used herein, the amino acid residues are abbreviated as follows: alanine (Ala; A), asparagine (Asn; N), aspartic acid (Asp; D), arginine (Arg; R), cysteine (Cys; C), glutamic acid (Glu; E), giutamme (Gin; Q), glycine (Gly; G), histidme (His; H), isoieucine (He; I), leucine (Leu; L), lysine (Lys; K), methionine (Met; M), phenylalanine (Phe; F), proline (Pro; P), serine (Ser; S), threonine (Thr; T), tryptophan (Trp; W), tyrosine (Tyr; Y), and valine (Val; V).
As used throughout the present application, the term "polypeptide" is used in its broadest sense to refer to a sequence of subunit amino acids. The polypeptides of the invention may comprise L-amino acids, D-amino acids (which are resistant to L-amino acid- specific proteases in vivo), or a combination of D- and L-amino acids. The polypeptides described herein may be chemically synthesized or recombinantly expressed. The polypeptides may be linked to other compounds to promote an increased half-life in vivo, such as by PEGylation, HESylation, PASylation, glycosylation, etc. Such linkage can be covalent or non-covalent as is understood by those of skill in the art.
In a first aspect, the invention provides isolated polypeptides comprising or consisting of a polypeptide at least 70% identical over the full length of the amino acid sequence of SEQ ID NO: I (see Table 1)
Residues AAs
1 M, or absent
2 S, A, D, G, L, or absent
3 H, Q, R, P, K
4 S, T, N, R, I
S, A, G, V
6 11. Q. K. E
7 G, !·:.. V
8 A, T, P, V
9 IV
10 K,E
1 S, A, V
12 A, T, V
13 L
14 A
15 D, E
16 S, !'. Y, L
17 A, L, V
18 K
19 S, A, G, V
20 F, C, Y
21 N,K
22 S, N, C, R, P, G
23 M, N, K
24 N, D
25 A, T, G, V
26 A, T
27 D, G
28 L, V
29 A, V
30 S, C, N, R, G
31 N,K
32 S, Y
33 Ύ, M, . I, L. V
34 N, D
35 D, G
36 A, P, V
37 S, A, 1. P, 1·.. V
38 I
39 F, Y
40 P, L
41 Q, M, P, L
42 D, G, E
43 M
44 A, T, V
45 H, S. P, R. L
46 A, V
47 D, G, V
48 G
49 C, P, R
50 Q,R
51 D, N, Y
52 S,T, I
53 Q. P, E, L
54 R. K. E
55 M, L
56 W,L
57 Q,L
58 D,G
59 Q,L
60 T, M, K, I, L
61 D
62 T, M, L
63 C,G
64 M, V
65 S, N, C
66 D, G, E
67 P, L. V
68 K, E
69 S, F, L
70 T
7 S, A, 1. P, I
72 Q, M, L
73 N, D, G, V
74 V
75 Q,R
76 K. Ci. E
77 S, C, N
78 G
79 !.). Y, V
80 F,i,V
81 A, T, P, V
82 S, F, Y
83 E, V
84 S,G
86 S, N, I, R, G
87 F, I, L
88 S, C, R
89 A, V. L, V
90 R, K
91 S,G
92 S, P
93 S, D, G, V
94 Q. 1. N, R. P. K
95 D
96 S, C, N, I, G
97 R. K. i:
98 M, R, L
99 A, V
100 D, G
101 M, N, 1, V
102 A, 1. V
103 C,G
104 N, I, K, E
105 F, Y
106 E, V
107 M, K G, E, V
108 V
109 w
110 R, G
111 N, K
112 A, G
113 Q, D, P, R, K, L
114 N,D,P, G, Y
115 P,G
116 S, D, P, G
117 S, W, R, L
118 S, T, K
119 F, L
120 Y
121 11. C. R G
122 S, A, T, L V
123 T, R, I
124 F, A, S, T. V
125 S,N
126 Q, M, P, L
127 N, D, G, E, V
128 T, P, L
129 S, A, T, Y, V, or absent
130 N, R, K, E, or absent
The polypeptides of all aspects/embodiments of the invention bind to D3 and to 25- Hydroxyeholeealeiferol (25-D3) and can thus be used, for example, in the context of biosensors for specific quantification of vitamin D3 and 25-D3. The polypeptides of the inveniion provide a cheaper, selective alternative to currently used antibodies. Hie polypeptides of the invention are at least 70% identical with to the amino acid sequence of SEQ ID NO: 1 over its full length. In various embodiments, the polypeptides of the invention are at least 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical with to the amino acid sequence of SEQ ID NO: 1 over its full length.
In one embodiment, the isolated peptides comprising or consisting of the amino acid sequence in SEQ ID NO:2 (see Table 2).
Table 2. SEQ ID NO:2
26 A
27 D,G
28 V
29 A
30 S
31 K
32 Y
33 M
34 D
35 D, G
36 A
37 A, V
38 1
39 F
40 P
41 L
42 D
43 M
44 A
45 R,P
46 V 7 D
48 G
49 R
50 Q
51 N, Y
52 S,I
53 Q
54 R, K
55 L
56 W
57 Q
58 G
59 L
60 M, I
61 D
62 T, M
63 G
64 V
65 s
66 G, E
67 P,L
68 K
70 T
71 T, I
,' Z M, L
73 D, N, V
74 V
75 Q
76 K, E
77 S
78 G
79 D
80 F
81 A
82 F, Y
83 E
84 S
85 G
86 S, R
87 F
88 S
89 L
90 K
91 G
92 P
93 D, G
94 P, K
95 D
96 S
97 K
98 L
99 V
100 D, G
101
102 A
103 G
104 I, K
105 Y
106 V
107 E
108 V
109 w
110 R
111 K
112 G
9
1 14 D, G
115 G
116 G
117 W
118 K
119 L
120 Y
121 H, R
122 T
123 I
124 A
125 N
126 L
127 D, G
128 P
129 A, or is absent
1301 R, K, or is absent
In another embodiment, the isolated polype ptides comprising or consisting of the acid sequence of SEQ ID NO:3 (see Table 3).
3; SEO ID NO:3
Residue AAs
1 M, or is absent
2 D, G, L, or is absent
.5 Q, P
4 S, T
5 A
6 H, K
7 E
8 A
9 I
0 E
1 1 A
12 A
13 L
14 A
5 D
16 F
17 V
18 K
19 A, V
65 s
66 E
67 P
68 K
69 F
70 T
71 T
72 L
73 N
74 V
75 Q
76 K, E
77 S
78 G
79 D
80 F
81 A
82 F
83 E
84 S
85 G
86 S
87 F
88 S
89 L
90 K
91 G
92 P
93 G
94 K
95 D
96 S
97 K
98 L
99 V
100 D, G
101 I
102 A
103 G
104 ΐ
105 Y
106 V
107 E
108 V
109 w
110 R
111 K
1 12 G
113 Q
1 14 D
115 G
116 G
1 17 W
118 K
1 19 L
120 Y
121 R
122 T
123 I
124 A
125 N
126 L
127 D, G
128 P
129 A, or is absent
130 R . K . or is absent
Polypeptides within the scope of SEQ ID NOS:2-3 show particularly strong binding to and selectivity for 25-D3 as shown via yeast surface display.
In various further embodiments, the isolated polypeptides comprises or consists of a peptide with an amino acid sequence selected from the group consisting of the following, each of which is believed to bind to 25-D3 and/or D3 generated via homology, related proteins, or sequences obtained from library sorting that showed a signal on yeast:
4424 (CDL2):
GQSA EAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDV'AGKYVVVWRK GQDGGWKLYRTISNLDPAK (SEQ ID NO: 4)
GQDGGWKLYRTISNLDPAK (SEQ ID NO: 5)
4424+ 106E Error Prone Neg Sort Mutant:
GQSAKEA1EAALADFVK. YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNIQKL QGLMDMGVSELKLTTLDVQESGDIAFESGSFSLKGPGKDSKLVDVAGKYVEVWRK GQDGGWKLYRTISNLDPAK (SEQ ID NO: 6)
4424+ 106E Error Prone Neg Sort Mutant:
GQIAKEA1EAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQN1QKLW QGLMDMGMSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVEVWRK GQDGGWKLYRTI SNPD P AK (SEQ I I) NO: 7)
4424+ 106E Error Prone Neg Sort Mutant:
GQSAKEA1EAV1ADFVKAYNSKDAAG SKYMNDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVEVWRK GQDGGW LYCTISNLDPAK (SEQ ID NO: 8)
4424+ 106E Error Prone Neg Sort Mutant:
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVVVWRK
GQDGGWKLYRTISNLDPAK (SEQ ID NO: 9)
4424+ 106E Error Prone Neg Sort Mutant:
G JSAQEAIEAALADFVKAYNSKDAAGVASKY TODAAIFPLDMARVDGRQNTQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSL GPGKDSKLVDVAGKYVEVWRK GQDGGWKLYRTISNLDPAK (SEQ ID NO: 10)
4424+ 106E Error Prone Neg Sort Mutant:
GQSA EAIEAALADFVKAYNSKDAAG TASKYTMDDAAIFPLDMARVDGRQNIQKLW
QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVEV\VRK
GQDGDVVKLYRTISNLDLAK (SEQ ID NO: 1 1)
4424+ 106E Error Prone Neg Sort Mutant:
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQDIQKLW
QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVEVWI K
GQDGGWKLYRTISNLDPAK (SEQ ID NO: 12)
4424+ 106E Error Prone Neg Sort Mutant:
GQSA EAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW
QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAGKYVEVWRK
GQDGGWKLYRTiSNLNPAK (SEQ ID NO: 13)
Model 4 (4424 + V106E + V100I + S 123A):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW
QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPG DSKLVDIAGKYVE RKG QDGG KLYRTI AN LDPAK (SEQ ID NO: 14)
Model 1 (V106E + T121V + S12.3A + VIOOM):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNTQKLW QGLMDMGVSEVKLTTLDVQESGDFAFESGSFSAKGPGKDSKLVDMAGKYVE R KGQDGGWKLYRV1AN LDPAK (SEQ ID NO: 15)
Model 2 (V 106E + S 123A + "Π21Α + V100I):
GQSA EAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRKG QDGGWKLYRAIANLDPAK (SEQ ID NO: 16)
Model 3 (V106E + S 123V + T121V + VI 001):
GQSAKEAIEAALADFYKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW
QGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVVVRKG
QDGGWKLYRVIVNLDPAK (SEQ ID NO: 17)
M26 (M4 + A36P + L66P+A80P):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAPIFPLDMARVDGRQNIQKLW
QGLMDMGVSEPKLTTLDVQESGDFPFESGSFSLKGPGKDSKLVDIAGKYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO: 18)
M30 (M4 + R44P + E65G + L66V):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLW
QGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRK
GQDGGWKLYRTIANLDPAK(SEQ ID NO: 19)
M16 (M4 + Q2K + L66P):
GKSAK£AIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSEPKLT LDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO:20)
B5 (4424+ 106E+L66P+Q49R):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRRNIQKLW QGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVE-VWRKG QDGGWKLYRTIANLDPAK (SEQ ID NO : 21 )
M6:
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSEPKLT LDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO:22)
M23:
GQSAK£A1EAALADFVKAY SKDAAGVASKYMDDAAIFPLDMARVDGRQNILKLW QGLMDMGVCELKFTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGKYVEVWRK GQDGGW LYRTTANLDPAK (SEQ ID NO:23)
H34 (M30 + Al 8V + D72N + Kl 031):
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLW QGL1VIDMGVSGVKLT LNVQESGDFAFESGSFSLKGPGKDSKLVDIAGIYVEVWRKG QDGGWKLYRTIANLDPAK (SEQ ID NO:24)
F4:
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDIKLVDIAGKYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO:25)
F14:
GQSAKEAIEAALADFYKAY SKDAAGVASKYMDDAAIFPLDMARVDGRQNIQKLW QGLMDMGVSEPKLTTLDVQESGDFAFESGSISLKGPGKDSKLVDTAGKYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO: 26)
1 11 122:
GQSAKEAIEAALADFVKAFNGKDAADVASKYMDDAAIFPLDMARVDGR.QNTQKLW QGLN-roTGVSEPKPT L QESGDFAFESGSFSLKGPGPDSKLVDIAGKYVEVWRKG QDGGWKLYHTIANLDPAK (SEQ ID NO:27)
HH24 (Tightest measured binder):
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLW QGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGn VE '¾KG QDGGWKLYRTIANLDPAK (SEQ ID NO: 28)
HH35vl (CDL2.1):
DQSAKEAIEAALADFYKVYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLW QGLIVTOMGVSEPKFT LNVQKSGDFAFESGSFSLKGPGKDSKLVDIAGIYVEVWRKG QDGGWKLYRTLANLDPAK (SEQ ID NO: 29)
J lC-16 (CDL2.2); slightly truncated from HH35.vl/CDL2.1 QSAKEAIEAAI DFVKWNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLWQ GLMDMGVSEPKFTTLNVQKSGDFAFESGSFSLKGPGKDSKLVGIAGIYVEVWRKGQ DGGWKLYRTIANLGP (SEQ ID NO: 30)
HH35v2:
DQSAKEAIEAALADFVKV'YNSKDAAGVASKYMDDAVIFPLDNIAPVDGRQNSQKLW QGLMDMGVSEPKFTTL VQKSGDFAFESGSFSLKGPGKDSKLVDIAGIYVEVWRKG QDGGWKLYRTIANLDPA (SEQ ID NO:? ! }
Wlv l :
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDGAA1FPLDMAPVDGRQNIQKLW QGLIDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPDKDSKLVDIAGKYVEVWRKG QDGGWKLYRTIANLDPAK (SEQ ID NO:32)
Wlv2:
GQSAKEAIEAA1ADFLKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQY1QRLW QGLMDMGVSEPKFTIT.NVQESGDFAFESGSFSLKGPGKDSKLVDIAGIYVEVWRKG
QDGGWKLYRTIANLDPAK (SEQ ID NO: 33}
W19vl :
LPTAFiEAIEAALADFVKVYNSKDAAGVASKYMDDAVIFPLDMARVDGRQNIQKLW QGLNTOMGVSEPKFTTXNVQESGDFAFESGSFSLKGPGKDSKLVDTAGIYVEVWRKG
QDGGWKLYRTIANLDPAR (SEQ ID NO:34)
W19v2:
LPTAHEAIEAALADFVK\^nsiSKDAAGVASKYMDDAVIFPLDMARVDGRQNIQKLW7 QGLMDMGVSEPKFTILNVQESGDFAYESGSFSLKGPGKDSKLVDIAGIYVE RKG QDGGWKLYRTIANLDPAK (SEQ ID NO:35)
W24:
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNIQKLW QGLMDMGVSEPKFT IVCSrVQESGDFAFESGRFSLKGPGKDSKLVDIAGKYVEVWRK
GQGGGWKLYRTIANLDPAK (SEQ ID NO:36).
These additional sequences were obtained during the evolution of the initial design into its final form. They were sequenced from lib ran' pools that showed a significant binding signal via yeast surface display but were not characterized further:
* GQSAKEATEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNT QKLWQGLMDMGVSEP FTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI YVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:37)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLIDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDNAG
KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO:38)
DQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAV1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:39)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFRLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:40)
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:41)
DQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAV1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:42)
LPTAF1EAIEAALADFVKVYNSKDAAGVASKYMDDAVIFPLDMARVDGRQN1
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:43)
GQSAKEAIEATLADFVKAY SKDAAGVASKYMDDAAIFPLDMAPVGGRQNl
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:44)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQENGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQGGGW LYRTTANLDPVK (SEQ ID NO:45)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKLTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:46)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YEF^VR GQDGGWKLYRTIA LDPAK (SEQ ID NO: 47)
GQSAKVAIEAALADFVKVYKSKDVAGVASKYMDDAVIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y rE RKGQDGGWKLYRTIANLDPA (SEQ ID NO:48)
GQSAKEVIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEWRKGQDGC^VKLYRTIANLDPAK (SEQ ID NO:49)
DQSAKEPIEAALADFVKGYNSKDAAGVASKYMDDAV1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEWRKGQDGC^VKLYRTIANLDPAK (SEQ ID NO:50)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO:51)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVV R GQDGGWKLYRTISNLDPAK (SEQ ID NO:52)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYVDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:53)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIYPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTl^VQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:54)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QRLWQGLMDMGVSELKSTTLDVQESGDFAYESGSFSLKGPGKDSKLVDVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:55)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVE RKGQDGGWKLYRTTSNLDPAK (SEQ ID NO:56)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSISLKGPGKDSKLVDIAGK
YVEWRKGQDGC^VKLYRTIANLDPAK (SEQ ID NO:57)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDNKLVDIAG
KYVE RKGQDGGWKLYRTIANLDPAK (SEQ ID NO:58)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:59)
GQSAKEAIEAALADFVKAYNSKDAAGLASKYMDDAAIFPLDMAPVDGRQN1 QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO:60)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTALDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:61)
GQSAKEAIEAALADFVKSYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGLKLTTLDVQESGDFAFESGSFSLKGPGRDSKLVDITG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:62)
GQSAKEAIEAALADFVKJ YNSJ 3AAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:63)
GQIAKEAIEAALADFYKAYNSKDAAGVVSKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGDWKLYRTTANLDPAK (SEQ ID NO: 64)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYTDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:65)
GQSAKEAIEAALADFVKVYNSKDAAGVAGKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:66)
GQSAKEA1EAALADFVKJ YNSKDAAGV \SKYMDDAA1FPLDMARVDGRQD1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO:67)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGKDGGWKLYRTTANLDPAK (SEQ ID NO:68)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQNGGWKLYRTTANLDPAK (SEQ ID NO:69)
GQNAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 70)
AQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGRKLYRTIANLDPAK (SEQ ID NO:71 )
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGHQN1
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGDW LYRTTANLARR (SEQ ID NO:72)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDNAG
KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO: 73)
GQSAKEAIEAALADFVKAYNSKDAAGVARKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDNAG
KYVE RKGQDGGW LYRTIANLDPAK (SEQ ID NO: 74)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGNFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 75)
GQSAKEAIEAALADFVKJ YNSJ 3AAGVASKYMDDAAIFPLDMA1WDGRQNI
QKLWQGLLDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 76)
GQSAKEAIEAALADFVKJ YNSKDAAGV\ SKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFVFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 77)
GQIAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 78)
GQSAKEAIEAALADFVKJ YNSKDAAGV\ SKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDTGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 79)
GQSAKEAIEAALADFVKJ YNSKDAAGV\ SKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMCVSEPKLTTLDVQESGVFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 80)
GQSAKEAIEAALADFVKJ YNSJ 3AAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVGV^VRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 81)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFTFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRTTANLDPAK (SEQ ID NO: 82)
Ο08ΑΚΕΑ1ΕΑΑΕΑϋΡ ''ΚΑΥΝ8ΚΟΑΑθν\ 8ΚΥΜϋΟΑΑ1ΡΡΕΟΜΑ1 νθΟ1^Ν1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFRLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 83)
GQSAKEAIESALADFVKVYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 84)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLADIAG KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 85)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDIXJVSEPKFTTLDVQESGDFAFESGSFSLKGPGQDSKLVDIAGK
FVEWRKGQDGC^VKLYRTTANLDPAK (SEQ ID NO:86)
GQSAKET1EAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQM
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 87)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLGMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVW7RKGQDGGWKLYTRTISNLDPAK (SEQ ID NO:88)
GQSAKEAIEAALADLVKAYN'SKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVW7RKGQDGGWKLYTRTISNLDPAK (SEQ ID NO: 89)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVEWRKGQDGGWKLYRTTNLDPAK (SEQ ID NO: 90)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMVRVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVEWRKGQDGGWKLYRTTSNLDPAK (SEQ ID NO:91)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYLDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSGPKFTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVW7RKGQDGGWKLYTRTISNLDPAK (SEQ ID NO:92)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQDI QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVV RKGQDGGWKLYRTISNLDPAK (SEQ ID NO:93)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:94)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKMVDVA
ΟΚΥννν\ ΚΚθρθΟΟλ ΚΕΥΚΉ8ΝΕΟΡΑΚ (SEQ ID NO:95)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVVG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:96)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLADVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:97)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGWKLYRTTANLGPAK (SEQ ID NO:98)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDGELVDVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:99)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGMSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 100)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 101)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGIJViDMGVSEPKFTTLVVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 102)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
LKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVVV^VRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 103)
GQSAKEAIEAALADFVKAYNGKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDNKLVDVAG
KYVE RKGQDGGW LYRTTSNLDPAK (SEQ ID NO: 104)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYIDDAAIFPLDMARVDGRQN1Q
KLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVE RKGQDGGW'KLYRTIANLDPAK (SEQ ID NO: 105)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPSK (SEQ ID NO: 106)
GQSAKEAIEAALADFVKAYNSKDAADVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 107)
GQRAKEA1EAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQN1
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 108)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMASVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 109)
GQSSKEA1EAALADFVKJ YNSKDAAGVANKYMDDAAIFPLD^L RVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPTK (SEQ ID NO: 110)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLPG (SEQ ID NO: 1 1 1)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGDSKLVDIAGK
YVE RKGQDGGW'KLYRTIANLDPAK (SEQ ID NO: 112)
GQSAKEAIEAALAEFVKAYNCKDAAGVASKYMDDAAIFPLDMARVDGRQNl
QKLWQGLMDMGVSEPELTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVE RKGQDGGW'KLYRTIANLDPAK (SEQ ID NO: 113)
SQSAKETIEAALADFVKAYNSKDAAGVASKYMDDAEIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 1 14)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVM RKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 115)
GQSAKEA1EAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLGVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEV RKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 1 16)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRTTSNLDPAK (SEQ ID NO: l 17)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGNFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 1 18)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQN1
QKLWQGLTOMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVE RKGQDGGWKLYRTISNLDPAK (SEQ ID NO: l 19)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGYFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 120)
GQSAEEAIEAALAEFVKAYNSKDAAGVASKYMDDAAIFPLD L RVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 121)
GQSAKEAIEAALADFVKJ YNSKDAAGVVSKYMDDAAIFPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 122)
GQSAKEAIK^ ALADFVKAYNSKDAAGVASKYMDDAAIFPLD]VLARVDGRQN1
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVEWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 123)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVVGRQNI
QKLWQGLMDMGVSEPKFTTLDVQESGDFAFESGSFSLKGPGQDSKLVDIAG
KYVEWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 124)
GQSAKEAIEAALADFVKGYNPKDGAGVASKSMDDAP1FPPDMARVDGRQN1
QKLWQGLMDTGVSEPKFTTLDVQESGDFAFESGSFSLKGPGPDSKLVDIAGK
Y 'VVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 125)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDGAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVV RKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 126)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVGVAG
KYVE RKGQDGGW LYRTTSNLDPAK (SEQ ID NO: 127)
GQSAKEAIEAALADFLKGYNPKDGAGVASKYMDDAPIFPPDMAPVDGPQN1L
KLWQGLMDMGVSGPKFTTLVVQESGDFAFESGSFSPKGPGKDSKL-VDIAGK
YVVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 128)
GQSAKEAIEAALADFAKVYNGKDGAGVASKSMDDAPIFPPDMAPVDGPQNI
LKLWQGLMDMGVSEPKFTTLWQESGDFAFESGSFSVKGPGTDSKLVDIAGK
YVVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 129)
GQSAKEAIEAALADFVKGYNR DGAGVASKSMDDAPIFPLDMAPVDGPQNI
LKLWQGLMDTGVSEPKFTTLVVQESGDFAFESGSFSVKGPGPDSKLVDIAGK
YVV RKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 130)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTMDVQESGDFAFESGSFSLKGPGKDSKLVDVA
GKYVVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO: 131)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMALVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFEGGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 132)
GQSAKEAIEAALADFVKAYNSNDATGVASKYMDDAAIFPLDMAPVDGRQN1
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 133)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGNDSKLVDIAG
KFVE RKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 134)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLKDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 135)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLD^L RVDGRQNI
QKLWQDLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 136)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGCQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 137)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYTDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTPLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 138)
GQSAKEAIEAALADFVKACNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
EKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 139)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKSPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 140)
GQSVKEAIEAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 141)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDVAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 142)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYKDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTQDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRNGQDGGWKLYRTIANLDPAK (SEQ ID NO: 143)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGRDGGWKLYRTIANLDPAK (SEQ ID NO: 144)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGSGKDSKLVDIAG
KYVEVWRKGQDGDWKLYRTIANLDPAK (SEQ ID NO: 145)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLD^L RVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGPDSKLVDIAGK
YVEVWRKGPDGGWKLYRTTANLDPAK (SEQ ID NO: 146)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMTPVDGRQN1
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 147)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANPDPAK (SEQ ID NO: 148)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYKDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 149)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLGMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRSIANLDPAK (SEQ ID NO: 150)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANPDPAE (SEQ ID NO: 151)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGMSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAC
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 152)
GQSAKEAIEAVIADFVKAYNSMDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGWKLYRTITNLDPAK (SEQ ID NO: 1 53)
GQSAKEAIEAAIADFVKAYNSKDAAGVASKYMDDAAIFLLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 154)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPVKDSKLVDIAG
KYVE GKGQDGGWRKLYRTIANQDPAK (SEQ ID NO: 155)
GQSAKEAIEAALADFVKJ YNSNDAAGVASKYMDDPAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 156)
GQSAKEAVEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQN
IQKLW'QGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 157)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQN1
QKLWQGLMDMGVSELKLTSLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRnANLDPAK (SEQ ID NO: 3 58)
GQSAKEAIEAALADFVKAYNSKDTTGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 159)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAS1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 160)
GQSAKEAIEAAIADFVKAYNSNDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 161)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPDKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 162)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDVAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 163)
GQSAKEAIEAALADFVKAYNSKDAAGLASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YTOVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 164)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLD^L RVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWTLYRnANLDPAK (SEQ ID NO: 165)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
PK.MWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 166)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDCKLVDIAG
KYVK RKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 167)
GQSAKEA1EAALADSVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQECGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 168)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QKLLQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQYGGWKLYRTIANLDPAK (SEQ ID NO: 169)
GQSAKEAIEAALADFVKAYNSKDAAGVASNYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKL1TLDVQESGDFAFESGSLSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 170)
GQSAKEA1EAALADYVKAYNNKDAAGVASKYMDDAA1FPQDMAPVDGRQN
IQKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 171)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVNGVKLTTLDVQESGDFTFVSGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 172)
GQSAKEAIEAALADFVKJ YNSKDGAGVASKYMDDAPIFPLDMARVDGRQNI
QKLWQGLMDTGVSEPKFTTLVVQESGDFAFESGSFSPKGPGTDSKLVDIAGK
YVE RKGQDGGW'KLYRTIANLEPAK (SEQ ID NO: 173)
GQSAKEAIEAALADSVKJ YNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 174)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPPDMAPVDGRQNI
QKLWQGLMDMGVSGPKLTTTL QESGDFAFESGSFSLKGPGTDSKLVDIAG
KYVE RKGPDGGWKLYRTIANLDPAK (SEQ ID NO: 175)
GQTAKEAffiAALADFVKAYNSKDAAGVASKYlvmDAAIFPLDMAPADGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
EYVE RKGQDGGWRKLYRTIANLDPAK (SEQ ID NO: 176)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDVAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGE
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 177)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 178)
GQSAKEAIEAALADFVKAYNSKDTAGVASKYlvmDAAIFPLDMAPVDGRQNl
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 179)
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAAIFPLDMAHVDGRQNI
QKIAVQGQMDMGVSGVKLTTLI^VQESGDFAFESGSFSLKGPGKDSKIAIII^
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 180)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFASESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 181)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPPDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 182)
DQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAVIFPLDMARVDGRQNI
QKLWQGLMDMGVSDPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGLKLYRTIANLDPAK (SEQ ID NO: 183)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKIAVQGLMDMGVSEPKFTTMNVQESGDFAFESGRFSLKGPGKDSKLVDIAG
KYVEVWRKGQGGGWKLYRTIANLDPAK (SEQ ID NO: 184)
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y RE RKGQDGGW7KLYRTIANLDPAK (SEQ ID NO: 185)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGSWKLYRTIANLDPAN (SEQ ID NO: 186)
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAVIFPMDMARVDGRQN
IQKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y RE RKGQDGGW7KLYRTIANLDPAK (SEQ ID NO: 187)
GQSAKVAIEAALADFVKVYNSKDVAGVASKYMDDAVIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
Y RE RKGQDGGW7KLYRTIANLDPAK (SEQ ID NO: 188)
GQSAKVAIEAALADFVKVYNSKDVAGVASKYMDDAVIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGIFSLKGPGKDSKRVDIAGI
YVEVWRKGQDGGWKLYRΉANLDPAK (SEQ ID NO: 189)
GQSAKEA1EAALADFVKJ YNGKDAAGVGSKYMDDAA1FPLD^L RVDGRQNI
QKLWQGLMDTGVSEPKFTTLWQESGDFAFESGSFSLKGPGPDSKLVDIAGK
Y TE RKGQDGGW7KLYRTIANLDPA (SEQ ID NO: 190)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKPTTLNVQESGDFAFESGSFSLKGPSKDSKLVDIAGI
Y RE RKGQDGGW7KLYRTIANLDPAK (SEQ ID NO: 191)
GHSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDLGVSEPKFTTLNVQESGDFAFESGGFSLKGPGKDSKLVDIAGI
YVE RKGLDGGWTCLYRTIANLDPAK (SEQ ID NO: 192)
GQSAKEAIEAVLADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 193)
DQSAKEAIEAALADFVKVYNSKNAAGVASKYMDDAV1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTASLDPAK (SEQ ID NO: 194)
GQSAKEAIEAALADFVKVYNSKDVAGVASKYMDDAV1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 195)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDPAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YTOVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 196)
GQSAKEAIEAALADFVKVYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQKSGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 197)
GQSGKEAIEAALADFVKAYNGKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDTGVSEPKFTTLWQESGDFAFESGSFSLKGPGPDSRLVDIAGK
YVEVWRKGQDGGW'KLYRTTANLDPAK (SEQ ID NO: 198)
GQSAKEA1EAALADFVKAYNSKDAAGVANKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 199)
GQSAKEAIEAALADFVKAYNGKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDTGVSEPKFTTLVVQESGDFAFESGSFSLKGPGPDSKLVDIAGK
YVEVWRKGQDGGW'KLYRTTANLDPAK (SEQ ID NO: 200)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:201)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:202)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
LKLWQGLMDLGVSGPKFTTLVVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVEVWRKGQDGGWKLYRTTANLDTAK (SEQ ID NO:203)
GQSAKEAIEAALADFVKAYNSKDVAGVASKYMDDAV1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:204)
GQSAKGAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWmLlVlDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAGK
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 205)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRRNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:206)
GQSSKEAIEVALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPSKDSKLVDIAGK
YVEVWRKGPDGGWKLYRTIANLDPAK (SEQ ID NO:207)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDA FPLDMAPVDGRQNI
QELWQGLMDMGVSELKLTTLDVQESGDFAFESGNFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:208)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFCLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO:209)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLEMAPVDGRQN1
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 210)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDATIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG
KYVV RKGQDGGWKLYRTISNLDPAK (SEQ ID NO:21 1)
GQSAKEA1EAALADFVKJ YNSKDAAGVASKYMDDAA1FPLDMARVDGRQN1
QKLWQGLMDMGVSELKSTTLDVQESGDFAFESGSFSLRGPGKDSKLVDVAG
KYVVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:212)
GQSAKEAIEAALADFVKJ YNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLDVQESGDFAFESGSFSLKGPGKDIKLVDIAGK
Y TEWRKGQDGGW7KLYRTIANLDPAK (SEQ ID NO: 213)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKLTTLGVQESGDFAFESGSFSLKGPGKDNKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 214)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAGI
YVEVWRKGQDGGWKLYRTTANLDPAK (SEQ ID NO: 215)
GQSAKVAIEAALADFVKVYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAG
NYVEVWRKGQGGGWKLYRTIANLDPAK (SEQ ID NO: 216)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAA1FPLDMAPVDGRQNI
QKLWQGLMDMGVSGVKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRTIANLDPAN (SEQ ID NO: 217)
GQSAKVAIEAALADFVKVYNSKDAAGVASKYMDDAAIFPLDMAPVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAG
NYVEVWRKGQGGGWKLYRTIANLDPAK (SEQ ID NO: 218)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSEPKFTTLNVQESGDFAFESGSFSLKGPGKDSKLVDIAG
NYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 219)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKADPPPSSFGTRFMVPYN (SEQ ID NO:220)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQNI QKLWQGLMDMGVSELKLTTLDVRESGDFAFESGSFSLKGPGKDSKLVDIAG KYVEVWRKGQDGGWKLYRTISNLDPAK (SEQ ID NO:221)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQNI QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG KYVEVWRKGQDGGWKLYRTIANLDPAK (SEQ ID NO: 222)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAA1FPLDMARVDGRQNI QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDVAG KYVEWRKGQDGGWKLYRTTSNLDPAK (SEQ ID NO:223)
GQSAKEA1EAALADFVKJ YNSKDAAGV\ SKYMDDAAIFPLDMARVDGRQN TQKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG KYVEVWRKGQDGGWKLYRVIVNLDPAK (SEQ ID NO:224)
GQSAKGAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRVI LDPAK (SEQ ID NO:225)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVE RKGQDGGW LYRVI LDPAK (SEQ ID NO:226)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRAIANLDPAK (SEQ ID NO:227)
ARSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSELKLTTLDVQESGDFAFESGSFSLKGPGKDSKLVDIAG
KYVEVWRKGQDGGWKLYRAIANLDPAK (SEQ ID NO:228)
GQSAKEAIEAALADFVKAYNSKDAAGVASKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEVKLTTLDVQGSGDFAFESGSFSAKGPGKDSKLVDMA
GKYVEVWRKGQDGGWKLYRVIANLDPAK (SEQ ID NO:229);
GQSAKEAIEAALADFVKAYNSKDAAGVACKYMDDAAIFPLDMARVDGRQNI
QKLWQGLMDMGVSEVKLTTLDVQESGDFAFESGSFSAKGPGKDSKLVDMA
GKYVEVWRKGQDGGWKLYRVIANLDPAK (SEQ ID NO: 30). In a further embodiment, the polypeptides of any embodiment of any aspect of the invention may further comprise a tag, such as a detectable moiety. The tag(s) can be linked to tlie polypeptide through covaient bonding, including, but not limited to, disulfide bonding, hydrogen bonding, electrostatic bonding, nucleophilc (i.e. Cys, Lys) conjugation chemistry, recombinant fusion and conformational bonding. Alternatively, the tag(s) can be linked to the polypeptide by means of one or more linking compounds. Techniques for conjugating tags to polypeptides are well known to the skilled artisan. Polypeptides comprising a detectable tag can be used diagnostically to, for example, identify tlie presence of vitamin D3 or one of its metabolites or other steroid in a sample of interest. However, they may also be used for other detection and/or analytical and/or diagnostic purposes. Any suitable detection tag can be used, including but not limited to enzymes, prosthetic groups, fluorescent materials, luminescent materials, bioluminescent materials, radioactive materials, positron emitting metals, and nonradioactive paramagnetic metal ions. The tag used will depend on the specific detection/analysis/diagnosis techniques and/or methods used such as immunohistochemical
staining of (tissue) samples, flow cytometric detection, scanning laser cytometric detection, fluorescent immunoassays, enzyme-linked immunosorbent assays (ELlSAs),
radioimmunoassays (RJAs), bioassays (e.g., neutralization assays), Western blotting applications, etc. For immunohistochemical staining of tissue samples preferred tags are enzymes that catalyze production and local deposition of a detectable product. Enzymes typically conjugated to polypeptides to permit their immunohistochemical visualization are well known and include, but are not limited to, acetylcholinesterase, alkaline phosphatase, beta-galactosidase, glucose oxidase, horseradish peroxidase, and urease. Typical substrates for production and deposition of visually detectable products are also well known to the skilled person in the art. The polypeptides can be labeled using colloidal gold or they can be labeled with radioisotopes, such as 33P, 32P, 35S, 3H, and 1251. Polypeptides of the invention can be attached to radionuclides directly or indirectly via a chelating agent by methods well known in the art.
When the polypeptides of the invention are used for flow cytometric detections, scanning laser cytometric detections, or fluorescent immunoassays, the tag may comprise, for example, a fluorophore. A wide variety of fluorophores useful for fluorescently labeling the polypeptides of the invention are known to the skilled artisan. When the polypeptides are used for in vivo diagnostic use, the tag can comprise, for example, magnetic resonance imaging (MR!) contrast agents, such as gadolinium diethylenetriaminepentaacetic acid, to ultrasound contrast agents or to X-ray contrast agents, or by radioisotopic labeling.
The polypeptides of the invention can also be attached to solid supports, which are particularly useful for in vitro assays or purification of vitamin D3 or one of its metabolites. Such solid supports might be porous or nonporous, planar or nonplanar and include, but are not limited to, glass, cellulose, polyacrylamide, nylon, polystyrene, polyvinyl chloride or polypropylene supports. The polypeptides can also, for example, usefully be conjugated to filtration media, such as NHS-activated Sepharose or CNBr-activated Sepharose for purposes of affinity chromatography. They can also usefully be attached to paramagnetic
microspheres, typically by biotin-streptavidin interaction. As another example, the polypeptides of the invention can usefully be attached to the surface of a microtiter plate for ELISA.
In a further aspect, the present invention provides isolated nucleic acids encoding a polypeptide of the present invention. The isolated nucleic acid sequence may comprise RNA or DNA. As used herein, "isolated nucleic acids" are those that have been removed from their normal surrounding nucleic acid sequences in the genome or in cDNA sequences. Such
isolated nucleic acid sequences may comprise additional sequences useful for promoting expression and/or purification of the encoded protein, including but not limited to poly A sequences, modified Kozak sequences, and sequences encoding epitope tags, export signals, and secretory signals, nuclear localization signals, and plasma membrane localization signals, It will be apparent to those of skill in the art, based on the teachings herein, what nucleic acid sequences will encode the polypeptides of the invention.
In another aspect, the present invention provides recombinant expression vectors comprising the isolated nucleic acid of any aspect of the invention operatively linked to a suitable control sequence. "Recombinant expression vector" includes vectors that operatively link a nucleic acid coding region or gene to any control sequences capable of effecting expression of the gene product. "Control sequences" operably linked to the nucleic acid sequences of the invention are nucleic acid sequences capable of effecting the expression of the nucleic acid molecules. The control sequences need not be contiguous with the nucleic acid sequences, so long as they function to direct the expression thereof. Thus, for example, intervening untranslated yet transcribed sequences can be present between a promoter sequence and the nucleic acid sequences and the promoter sequence can still be considered "operably linked" to the coding sequence. Other such control sequences include, but are not limited to, polyadenylation signals, termination signals, and ribosome binding sites. Such expression vectors can be of any type known in the art, including but not limited plasmid and viral-based expression vectors. The control sequence used to drive expression of the disclosed nucleic acid sequences in a mammalian system may be constitutive (driven by any of a variety of promoters, including but not limited to, CMV, SV40, RSV, actin, EF) or inducible (driven by any of a number of inducible promoters including, but not limited to, tetracycline, ecdysone, steroid-responsive). The construction of expression vectors for use in transfecting prokaryotic cells is also well known in the art, and thus can be accomplished via standard techniques. (See, for example, Sambrook, Fritsch, and Maniatis, in: Molecular Cloning, A Laboratory Manual, Cold Spring Harbor Laboratory Press, 1989: Gene Transfer and Expression Protocols, pp. 109-128, ed. E.J. Murray, The Humana Press Inc., Clifton, N.J.), and the Ambion 1998 Catalog (Ambion, Austin, TX). The expression vector must be replicable in the host organisms either as an episorne or by integration into host chromosomal DNA. In a preferred embodiment, the expression vector comprises a plasmid. However, the invention is intended to include other expression vectors that serve equivalent functions, such as viral vectors.
In a still further aspect, the present invention provides host cells that have been transfected with the recombinant expression vectors disclosed herein, wherein the host ceils can be either prokaryotic (such as bacteria.) or eukaryotic. The cells can be transiently or stably transfected. Such transfection of expression vectors into prokaryotic and eukaryotic cells can be accomplished via any technique known in the art, including but not limited to standard bacterial transformations, calcium phosphate co-precipitation, electroporation, or liposome mediated-, DEAE dextran mediated-, polycationic mediated-, or viral mediated transfection. (See, for example, Molecular Cloning: A Laboratory Manual (Sambrook, et al, 1989, Cold Spring Harbor Laboratory Press; Culture of Animal Cells: A Manual of Basic Technique, 2nd Ed. (R.I. Freshney. 1987. Liss, Inc. New York, NY). A method of producing a polypeptide according to the invention is an additional part of the invention. The method comprises the steps of (a) culturing a host according to this aspect of the invention under conditions conducive to the expression of the polypeptide, and (b) optionally, recovering the expressed polypeptide.
In another aspect, the invention provides methods for detecting vitamin D3 or one of its metabolites, such as 25-D3, comprising contacting a sample of interest with a detectable polypeptide of the invention under suitable conditions for binding the detectable polypeptide to vitamin D3 or one of its metabolites (such as 25-D3) present in the sample to form a polypeptide- vitamin D3 (or, for example, a polypeptide-25-D3)) binding complex, and detecting the binding complex. In one embodiment, the sample is a biological sample, including but not limited to blood, serum, nasal secretions, tissue or other biological material from a subject to be tested. The polypeptides of the invention for use in this aspect may comprise a conjugate as disclosed above, to provide a tag useful for any detection technique suitable for a given assay . The tag used will depend on the specific
detection/analysis/diagnosis techniques and/or methods used. The methods may be earned out in solution, or the polypeptide(s) of the invention may be bound or attached to a carrier or substrate, e.g., microtiter plates (ex: for ELISA), membranes and beads, etc. Carriers or substrates may be made of glass, plastic (e.g., polystyrene), polysaccharides, nylon, nitrocellulose, or teflon, etc. The surface of such supports may be solid or porous and of any convenient shape.
In one embodiment, the polypeptide is a polypeptide according to SEQ ID NQS:2-3, or SEQ ID NOS: 4-230, each of which include the V107E modification relative to CDL2, which is shown in the examples that follow to significantly increase specificity for 25 -D 3
relative to D3. In specific embodiments, the polypeptide comprises or consists of SEQ ID NOS: 29 or 30 (CDL2.1 or CDL2.2).
In various non-limiting embodiments, the methods can be used for diagnosis, prognosis, and/or treatment monitoring of autoimmune or chronic diseases including but not limited to multiple sclerosis, systemic lupus erythematosus, and fibromyalgia.
Groupings of alternative elements or em bodiments of the invention disclosed herein are not to be construed as limitations. Each group member may be referred to and claimed individually or in any combination with otlier members of the group or otlier elements found herein. It is anticipated that one or more members of a group may be included in, or deleted from, a group for reasons of convenience and/or patentability. When any such inclusion or deletion occurs, the specification is deemed to contain the group as modified thus fulfilling the written description of all Markush groups used in the appended claims.
Certain embodiments of this invention are described herein, including the best mode known to the inventors for carrying out the invention. Of course, variations on these described embodiments will become apparent to those of ordinary skill in the art upon reading the foregoing description. The inventor expects skilled artisans to employ such variations as appropriate, and the inventors intend for the invention to be practiced otherwise than specifically described herein. Accordingly, this invention includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by the invention unless otherwise indicated herein or otherwise clearly contradicted by context. In closing, it is to be understood that the embodiments of the invention disclosed herein are illustrative of the principles of the present invention. Other modifications that may be employed are within the scope of the invention. Thus, by way of example, but not of limitation, alternative configuration s of the present invention may be utilized in accordance with the teachings herein . Accordingly, the present invention is not limited to that precisely as shown and described.
The particulars shown herein are by way of example and for purposes of illustrative discussion of the preferred embodiments of the present invention only and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of various embodiments of the invention.
In this regard, no attempt is made to show structural details of the invention in more detail than is necessary for the fundamental understanding of the invention, the description taken with the drawings and/or examples making apparent to those skilled in the art how the several forms of the invention may be embodied in practice.
Examples
Abstract
While previous efforts in designing proteins to bind small molecules have yielded some successes with hydrophilic targets, binding hydrophobic molecules is a qualitatively different challenge. Having few hydrogen bonds and a primarily hydrophobic surface makes it incredibly difficult to design binders for specificity over chemically similar molecules.
We developed a computational protocol that first performs an iterative search and vastly increases sampling when compared with previous protocols. This results in a tailored method for designing highly shape complementarity designs. We demonstrated the quality of these design by targeting the ligand 25- hydroxycholecaliferol (25-D3). 25-D3 is the hormonally active form of vitamin D3, is a common target for medical diagnostics, and would benefit from a greater distinction between 25-D3 and chemically similar metabolites such as vitamin D3 and vitamin D2.
Initial designed binders for 25-D3 showed negligible specificity over the chemically similar target vitamin D3. After directed evolution, these designs became more specific for their intended ligand, and resulted in nanomolar binders for 25-D3. Mutations suggest this specificity improvement is due to a change in backbone structure or protein stability as opposed to changes to the designed hydrogen bonding residues. A crystal structure was solved for a 25-D3 binder. Our design protocol has demonstrated the ability to create specific binding proteins for the hydrophobic ligand 25-D3.
Results
Computational Protocol for Design of Small Hydrophobic Molecules
The strategy to design a computational protocol to generate protein binders for hydrophobic small molecules focuses on high shape complementarity between
the small molecule and the protein Initially, the small molecule of interest is placed into protein pockets with high shape complementarity and sampling is expanded by including crystal structures of the top scoring topologies. Due to experimental restrictions with labeling of the ligands, the orientation of linker is used as a filter to remove placements where the linker points into the protein and not out. Next, the iigand interaction is systematically sampled by generating spatial perturbations of its initial placement, in order to increase its shape complementarity between the protein and ligand. Optimization of small phvsicochemical interactions in this way can result in discrete amino acid identity changes and improves sampling of the sometimes jagged energy landscape. The interactions between the ligand and protein are optimized using the ROSETTA ENERGY® function and the potential designs are filtered e.g. on shape complementarity. Lastly, the computational designs are manually inspected and rational substitutions are tested using ROSETTA®. The computational protocol was tested on the hydrophobic ligand 25-hydroxycholecaliferol (25-D3) .
25-D3 Designs
From the computational protocol, 28 designs were ordered in 6 different scaffold classes targeting the ligand 25-D3. 7 out of 28 designs showed a signal via yeast display and flow cytometry that indicates successful binding. Of these designs, the tightest, named CDL1, has a NTF2 topology (PDB ID: 1Z1S) which are known to bind steroids - interestingly the native sequence did not show any binding for 25-D3 so it was necessary to introduce mutations to repurpose its function. To increase the binding affinity the initial computational design, CDL1 , was evolved via error prone mutagenesis (ep-PCR) into a variant CDL1.1, which contains additional mutations P46S, R55A, H68P, and G136V The P46S and II68P mutations are located near the entrance of the binding site where P46S makes a loop more flexible while H68P rigidities a loop. The two other mutations are distal to the binding pocket and seem to increase stability of the scaffold by e.g. increasing helix-helix packing (R55 A). From yeast surface display, the initial design has a Kd of approximately 2uM where the evolved variant has an improved affinity with an estimated Kd of 229nM In a sensor application, specificity against the non-hydroxylated vitamin D3 would be an important
distinction. The initial design CDL1 did not show a significant preference for D3- 25 over D3, however, the evolved variant CDL1.1 increased its specificity to about two fold over CDLl . (see 'Table 4).
CDL1 = 6234
SGREQGHJVINAKEILVHALRLVENGDARGFCDLFHPEGVMEFPYAPPGYKTRFEGRE
TIWAHMRLFPEHLTIRFTD rQFYETADPDLAIGEFHGDG- rAWSGGKLAQDFISVLRT RDGQILLSRIFWNPLRJHLEALGGVEAAAKTVQGA (SEQ ID NO:23 I)
CDL1.1 = N3X-AD4 (Truncated as well as mutated from 6234}
NLYFQGFi^INAKEILVFiALRLVENGDARGFCDLFFiPEGVMEFPYAPSGY TRFEGAE
Tl AHMi LFPEPLIIl FTDVQFYETADPDLAIGEFHGDGVATVSGGKLAQDFlSVLRT RDGQILLSRIFW PLRHLEALV (SEQ ID NO:232)
We di scovered another binder for 25-D3, referred to here as CDL2. This binder showed an exceptionally strong signal when expressed on yeast and tested for a binding signal against a biotinyiated 25-D3 molecule via flow cytometry . It was further evolved to investigate and improve its specificity and affinity. To test a broader number of mutants, CDL2 was optimized using ep-PCR as well as small computationally guided library. The computationally guided library was constructed by docking the iigand into the binding site and optimizing the interactions between 25-D3 and the protein using ROSETTA®. To increase the sampling of the ligand, short MD simulations were performed to make small perturbations of the backbone. These computational variants, as well as variants generated via error prone mutagenesis, were expressed on yeast and sorted via fluorescence activated cell sorting. Individual designs sequenced from various rounds of mutagenesis and sorting were sequenced during the evolution to inform further design and mutagenesis strategies. One evolved variant, CDL2. 1 , incorporated 0 mutations scattered around the protein. Another evolved variant CDL2.2 is the most advanced variant from the directed evolution efforts.
Designation PDB ID Protein Fold Ligand Target Approximate Kd
CDL ! i Zi S Putative IsoiDerase 25-tvydroxycholecalciferol ΠΟΟηΜ
CDL1.1 1Z1S Putative Isomerase 25-hydioxycholecalciferol 229nM
CDL2 3HX8 Ketosteroid Isomerase 25-hydroxychoiecaiciferoi 2100 nM
CDL2.1 3HX8 Ketosteroi d Isomerase 25-tvydroxycholecalciferol 3 ! 9 nM
Next, crystal structures of an evo ved variant of CDL2, referred to as
CDL2.1, were solved where the ligand was within 1.066 Armsd of the docked placement of the ligand.
The design strategy for binders targeting 25-D3 or any hydrophobic small molecule is to favor s highly shape complementary pocket with tight packing, as adequate specificity through hydrogen bonds is sometimes not possible.
Hydrogen bonding interactions are not treated as a strict requirement in initial design rounds. During iterative refinement involving repeated rounds of ligand perturbation and ROSETTA® design, a selection pressure for hydrogen bonds is applied. The primary difference between the molecule 25-D3 over the similar molecule, vitamin D3, is a tertiary hydroxy 1 group, and is the primary design target to introduce specificity between the two molecules. 25-D3 binding design CDL1 is based on the scaffold with PDB ID 1Z1 S, a putative isomerase with unknown function. CDL1 contains 8 mutations from 1Z1 S, which primarily replace the native binding pocket with shape complementary hydrophobic residues. CDLI accomplishes the recognition of the tertiary hydroxy 1 via the design of two serine residues deep in the binding pocket.
CDL2 is based on the scaffold with PDB ID 3HX8, a putative ketosteroid isomerase. CDL2 was evolved against 25-D3 for a potential use as a diagnostic. Several crystal structures were solved of evolved variants, the tightest of which is named CDL2.1. The crystal structure of CDL2.1 contains a significant backbone movement near a key residue, 106E. This mutation was found through directed evolution and, once found, provided the majority of the specificity for 25-D3 over vitamin D3 and significantly increased affinity. We therefore consider it an important interaction to be able to correctly model to improve future design efforts.
We used ROSETTA DOCK® to probe the quality of the designs to bind 25-D3. When 25-D3 is docked into the crystal structure, the ligand position agrees within 0,068° A of the crystal ligand position and additionally shows a
favorable docking profile, where the ligand interface energy decreases as RMSD of the docked ligand approaches that of the ligand in the crystal structure. See Figure ID.
Materials and Methods
Selection of Protein Structures
The scaffolds used were crystal structures from the Protein Data Bank (PDB) [9] from 2013. Filters were applied to ensure the protein sizes were no larger than 350 am ino acids, contained heteroatoms, and had a resolution 2.5° A or better. Crystal structures were al so collected from the binding mother of all databases (MOAD) [ 10] from 2010, as well as homologous proteins shown to have expressed well or have had success being computationally designed in the past.
Ligand Conformer Generation and Placement
Conform ers for the target ligands were generated using OPENBABEL® [1 1].
The PATCHDOCK® [ 12] algorithm was used to place the lowest energy ligand conformer into a protein pocket with high shape complementarity. We filtered these Patch- dock outputs based on the ligand' s orientation and solvent accessibility. To increase sampling of scaffold backbones and binding pocket shapes, the surviving design models were expanded to include scaffolds in the same pfam [ 13] and a variety of sequence variants were generated. PATCHDOCK®-based placement was again applied to each one of these scaffold variants with an additional 20 to 40 low energy ligand conformers.
Design of Protems
Docked poses were again filtered, as described above, before being expanded by making translational and rotational perturbations to the ligand positions. Each one of these perturbed models underwent further design to optimize the sequence for minimal predicted interaction energy between the ligand and protein. Models were filtered using the Rosetta interface energy and shape complementarity. These surviving models again underwent perturbation.
ROSETTA DESIGN©, and filtering in an iterative process. In successive rounds, the amplitude of perturbation was decreased, density of sampling was increased, and score filters were made stricter. Designs were manually inspected e.g., to revert substitutions distal to the binding site back to native identity. The final designs were ordered for experimental testing
Experimental verification of Design using Yeast
Binding activity yeast surface display and flow cytometry, according to methods previously described by Wittrup et al. [14]
MD Simulations
Short MD simulations were set up for design CDL2. The coordinates were prepared using AMBERTOOLS® 14 with the ffl4SB force field. The starting coordi-nates were minimized for 20.000 steps with 10.000 steepest descent (SD) followed by 10.000 conjugated gradient (GC). The minimized structures were solvated and neutralized by adding counter ions to the system. The solvent was minimized by restraining residue 1 to 128 using a force of 500.0 kcal/moi/A SD for 10.1 steps followed by 10.000 steps of GC. The whole complex was minimized using 10.000 steps of SD followed by 10.000 GC. The system was heated to 300 K applying a restraint of 50.0 kcal/mol/ Aon residue 1 to 128 for 50.000 steps using an integration step of 2 fs. 50 trajectories with different initial velocities were produced keeping the temperature at 300 K by using a Langevin thermo- stat with a collision frequency of 2ps~ * integrated using a step of 2 fs keeping the pressure at 1 atm using a barostat. Coordinates were saved every 10 ps.
References
[1] Design of a novel globular protein fold with atomic-level accuracy, Science 302 (5649) (2003) 1364-1368.
[2] Computational de novo design of a self-assembling peptide with predefined structure, Journal of Molecular Biology 427 (2) (2015) 550-562.
[3] Kemp elimination catalysts by computational enzyme design, Nature 453 (2008) 190-195.
[4] De novo computational design of retro-aldol enzymes. Science 319 (5868) (2008) 1387-1391.
[5] Computational design of proteins targeting the conserved stem region of influenza hemagglutinin, Science 332 (6031) (201 1) 816-821.
[6] Exploitation of binding energy for catalysis and design, Nature 461 (2009) 1300-1304.
[7] Computational redesign of endonuclease DNA binding and cleavage specificity, Nature 441 (2006) 656-659.
[8] Computational design of ligand-binding proteins with high affinity and selectivity, Nature 501 (2013)212-216.
[9] The protein data bank. Nucleic Acids Research 28 (4) (2000) 235-242.
[10] Binding moad (mother of all databases)., Proteins 60 (2005) 333-40.
[11] Open babel: An open chemical toolbox, Journal of Cheminformatics 3 (33).
[12] Patchdock and symmdock: servers for rigid and symmetric docking. Nucleic Acids Res 33 (Web Server issue) (2005) W363-7.
[13 I The pfam protein families database., Nucleic Acids Res 38 (2010) D211-22.
[14] Isolating and engineering human antibodies using yeast surface display, Nat Protoc 1 (2) (2007) 755-68.
Claims
1. An isolated polypeptide comprising a polypeptide at least 70% identical over the full length of the amino acid sequence of SEQ ID NO: 1.
2. The isolated polypeptide of claim 1, comprising a polypeptide at least 80% identical over the full length of the amino acid sequence of SEQ ID NO: 1 .
3. The isolated polypeptide of claim 1, comprising a polypeptide at least 90% identical over the full length of the amino acid sequence of SEQ ID NO: 1 ,
4. The isolated polypeptide of any one of claims 1 -3, comprising the amino acid sequence of SEQ ID NO: 2.
5. The isolated polypeptide of any one of claims 1-3, comprising the amino acid sequence of SEQ ID NO: 3.
6. The isolated polypeptide of any one of claims 1 -5, compri sing the amino acid sequence of a peptide selected from the group consisting of SEQ ID NOS: 1 -230,
7. The isolated polypeptide of any one of claims 1-5, comprising the amino acid sequence of a peptide selected from the group consisting of SEQ ID NOS: 29-30.
8. An isolated polypeptide comprising the amino acid sequence of SEQ ID NO: 231 or
232.
9. The isolated polypeptide of any one of claims 1-8, further comprising a detectable tag.
10. An isolated nucleic acid encoding the polypeptide of any one of claims 1-9.
11. A recombinant expression vector comprising the isolated nucleic acid of claim 10 operabiy linked to a control sequence.
12. A recombinant host cell comprising the recombinant expression vector of claim 1 1.
13, A method for detecting vitamin D3 or one of its metabolites, comprising:
(a) contacting a sample of interest with a polypeptide according to any one of claims 1-9 under suitable conditions for binding the polypeptide to vitamin D3 or one of its metabolites present in the sample to form a polypeptide-vitamin D3 (or one of its
metabolites) binding complex, and
(b) detecting the binding complex.
14. The method of claim 13, wherein the binding complex comprises a polypeptide-25- D3 binding compiex.
15. The method of claim. 13, wherein the polypeptide is selected from, the group consisting of SEQ ID NOS: 29-30.
16. The method of any one of claims 13-15, wherein the method is used for diagnosis, prognosis, and/or treatment monitoring of autoimmune or chronic diseases including but not limited to multiple sclerosis, systemic lupus erythematosus, and fibromyalgia.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/541,102 US20170322229A1 (en) | 2015-02-02 | 2016-02-02 | High affinity vitamin d3 binding proteins |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201562110710P | 2015-02-02 | 2015-02-02 | |
| US62/110,710 | 2015-02-02 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2016126632A1 true WO2016126632A1 (en) | 2016-08-11 |
Family
ID=56564572
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2016/016054 Ceased WO2016126632A1 (en) | 2015-02-02 | 2016-02-02 | High affinity vitamin d3 binding proteins |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US20170322229A1 (en) |
| WO (1) | WO2016126632A1 (en) |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5994504A (en) * | 1996-02-12 | 1999-11-30 | Cedars-Sinai Medical Center | Vitamin D response element binding protein |
| US6268478B1 (en) * | 1996-02-12 | 2001-07-31 | Cedars-Sinai Medical Center | Intracellular vitamin D binding protein |
| US20130143241A1 (en) * | 2010-04-01 | 2013-06-06 | Michaël Franciscus Wilhelmus Cornelis Martens | Immunoassay for free vitamin d |
| US20130295593A1 (en) * | 2011-12-31 | 2013-11-07 | Abbott Laboratories | Truncated human vitamin d binding protein and mutation and fusion thereof and related materials and methods of use |
-
2016
- 2016-02-02 WO PCT/US2016/016054 patent/WO2016126632A1/en not_active Ceased
- 2016-02-02 US US15/541,102 patent/US20170322229A1/en not_active Abandoned
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5994504A (en) * | 1996-02-12 | 1999-11-30 | Cedars-Sinai Medical Center | Vitamin D response element binding protein |
| US6268478B1 (en) * | 1996-02-12 | 2001-07-31 | Cedars-Sinai Medical Center | Intracellular vitamin D binding protein |
| US20130143241A1 (en) * | 2010-04-01 | 2013-06-06 | Michaël Franciscus Wilhelmus Cornelis Martens | Immunoassay for free vitamin d |
| US20130295593A1 (en) * | 2011-12-31 | 2013-11-07 | Abbott Laboratories | Truncated human vitamin d binding protein and mutation and fusion thereof and related materials and methods of use |
Also Published As
| Publication number | Publication date |
|---|---|
| US20170322229A1 (en) | 2017-11-09 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US20080286834A1 (en) | Leader Sequences For Directing Secretion of Polypeptides and Methods For Production Thereof | |
| US6395872B1 (en) | Secreted neural adhesion proteins | |
| CN111018983B (en) | Anti-human cardiac troponin I antibody and application thereof | |
| DiDonato et al. | A scaleable and integrated crystallization pipeline applied to mining the Thermotoga maritima proteome | |
| EP1441030A1 (en) | Method of purifying recombinant fused protein and method of producing protein using the same | |
| AU721832B2 (en) | Reading frame independent epitope tagging | |
| US20170322229A1 (en) | High affinity vitamin d3 binding proteins | |
| JP2020505931A (en) | Method for analyzing multiple cells and detecting protein sequence variants in the manufacture of biological products | |
| US20210324011A1 (en) | Self-assembling protein homo-polymers | |
| CN109758590B (en) | Method for screening human prostate cancer tumor antigen epitope peptide | |
| CN114438125B (en) | Method for enhancing LGI1 immunofluorescence, and immunofluorescence detection method and application of LGI1 antibody | |
| CN118599803A (en) | CKMB recombinant antigen and its preparation method and application | |
| CN115819578A (en) | High affinity Human IL-5 rabbit monoclonal antibodies and uses thereof | |
| CN117624336A (en) | An expression, purification and detection method of active recombinant hSIRPA protein | |
| EP0534619A2 (en) | Expression cloning method | |
| CN105296478B (en) | A kind of multi-tag antigen and its preparation method and application | |
| CN111018991A (en) | An antibody against CA50 and its application | |
| CN110093361B (en) | Enhancer polypeptide for enhancing gene expression and application thereof | |
| CN117327158B (en) | A light-induced phase-change protein element and its application | |
| CN111849930B (en) | Mi-2 recombinant antigen and preparation method and application thereof | |
| CN121203004B (en) | Free light chain, quality control product and application thereof | |
| Schmitt | Recombinant autoantigens for diagnosis and therapy of autoimmune diseases | |
| US20060127963A1 (en) | Microarray-based analysis of rheumatoid arthritis markers | |
| WO2005094187A2 (en) | Labeling substance and chimera substance, process for preparing these substances, and method of biosubstance trapping, structural analysis or/and identification with use of the labeling substance | |
| CN116574758A (en) | Vector for expressing lncRNA ENSBTAT00000084270ORF region and application |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 16747071 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 16747071 Country of ref document: EP Kind code of ref document: A1 |

