WO2004097017A2 - Compositions for enhancing transport and antisense efficacy of nucleic acid analog into cells - Google Patents

Compositions for enhancing transport and antisense efficacy of nucleic acid analog into cells Download PDF

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Publication number
WO2004097017A2
WO2004097017A2 PCT/US2004/013660 US2004013660W WO2004097017A2 WO 2004097017 A2 WO2004097017 A2 WO 2004097017A2 US 2004013660 W US2004013660 W US 2004013660W WO 2004097017 A2 WO2004097017 A2 WO 2004097017A2
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subunits
subunit
peptide
conjugate
amino acid
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PCT/US2004/013660
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French (fr)
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WO2004097017A3 (en
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Patrick L. Iversen
Hong M. Moulton
Michelle H. Nelson
Andrew D. Kroeker
David A. Stein
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Avi Biopharma, Inc.
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Priority to CA2523672A priority Critical patent/CA2523672C/en
Priority to AU2004235396A priority patent/AU2004235396B2/en
Priority to AT04751183T priority patent/ATE479763T1/en
Priority to DE602004028930T priority patent/DE602004028930D1/en
Priority to EP04751183A priority patent/EP1629105B1/en
Publication of WO2004097017A2 publication Critical patent/WO2004097017A2/en
Publication of WO2004097017A3 publication Critical patent/WO2004097017A3/en
Priority to AU2011200720A priority patent/AU2011200720B2/en

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/001Preparation for luminescence or biological staining
    • A61K49/0013Luminescence
    • A61K49/0017Fluorescence in vivo
    • A61K49/005Fluorescence in vivo characterised by the carrier molecule carrying the fluorescent agent
    • A61K49/0056Peptides, proteins, polyamino acids
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/50Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient the non-active ingredient being chemically bound to the active ingredient, e.g. polymer-drug conjugates
    • A61K47/51Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient the non-active ingredient being chemically bound to the active ingredient, e.g. polymer-drug conjugates the non-active ingredient being a modifying agent
    • A61K47/62Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient the non-active ingredient being chemically bound to the active ingredient, e.g. polymer-drug conjugates the non-active ingredient being a modifying agent the modifying agent being a protein, peptide or polyamino acid
    • A61K47/64Drug-peptide, drug-protein or drug-polyamino acid conjugates, i.e. the modifying agent being a peptide, protein or polyamino acid which is covalently bonded or complexed to a therapeutically active agent
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/001Preparation for luminescence or biological staining
    • A61K49/0013Luminescence
    • A61K49/0017Fluorescence in vivo
    • A61K49/0019Fluorescence in vivo characterised by the fluorescent group, e.g. oligomeric, polymeric or dendritic molecules
    • A61K49/0021Fluorescence in vivo characterised by the fluorescent group, e.g. oligomeric, polymeric or dendritic molecules the fluorescent group being a small organic molecule
    • A61K49/0041Xanthene dyes, used in vivo, e.g. administered to a mice, e.g. rhodamines, rose Bengal
    • A61K49/0043Fluorescein, used in vivo
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K49/00Preparations for testing in vivo
    • A61K49/001Preparation for luminescence or biological staining
    • A61K49/0013Luminescence
    • A61K49/0017Fluorescence in vivo
    • A61K49/005Fluorescence in vivo characterised by the carrier molecule carrying the fluorescent agent
    • A61K49/0054Macromolecular compounds, i.e. oligomers, polymers, dendrimers
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    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/11DNA or RNA fragments; Modified forms thereof; Non-coding nucleic acids having a biological activity
    • C12N15/113Non-coding nucleic acids modulating the expression of genes, e.g. antisense oligonucleotides; Antisense DNA or RNA; Triplex- forming oligonucleotides; Catalytic nucleic acids, e.g. ribozymes; Nucleic acids used in co-suppression or gene silencing
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    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/87Introduction of foreign genetic material using processes not otherwise provided for, e.g. co-transformation
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    • C12N2310/00Structure or type of the nucleic acid
    • C12N2310/10Type of nucleic acid
    • C12N2310/11Antisense
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    • C12N2310/00Structure or type of the nucleic acid
    • C12N2310/30Chemical structure
    • C12N2310/31Chemical structure of the backbone
    • C12N2310/314Phosphoramidates
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    • C12N2310/00Structure or type of the nucleic acid
    • C12N2310/30Chemical structure
    • C12N2310/32Chemical structure of the sugar
    • C12N2310/323Chemical structure of the sugar modified ring structure
    • C12N2310/3233Morpholino-type ring
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    • C12N2310/00Structure or type of the nucleic acid
    • C12N2310/30Chemical structure
    • C12N2310/35Nature of the modification
    • C12N2310/351Conjugate
    • C12N2310/3513Protein; Peptide
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    • C12N2320/00Applications; Uses
    • C12N2320/30Special therapeutic applications
    • C12N2320/32Special delivery means, e.g. tissue-specific

Definitions

  • compositions for Enhancing Transport of Molecules into Cells are provided.
  • the invention relates to compositions and methods for enhancing delivery of molecules, e.g. biological agents, into cells, and in particular to intracellular delivery and enhanced binding of substantially uncharged nucleic acid analogs, particularly phosphorodiamidate-linked morpholino oligomers.
  • Tat 49-57 A segment of the HIV Tat protein consisting of amino acid residues 49-57 (Tat 49-57, having the sequence RKKRRQRRR) has been used to deliver biologically active peptides and proteins to cells (e.g. Barsoum et ai, 1994, PCT Pubn No WO 94/04686) Tat (49-60) has been used to enhance delivery of phosphorothioate oligonucleotides (Astriab- Fisher, Sergueev et al. 2000, Astriab-Fisher, Sergueev et al.
  • Oligonucleotides are one class of potentially useful drug compounds whose delivery has often been an impediment to therapeutic use Phosphorodiamidate-linked morpholino oligomers (PMOs, see e.g. Summerton and Weller, 1997) have been found more promising in this regard than charged oligonucleotide analogs such as phosphorothioates
  • PMOs Phosphorodiamidate-linked morpholino oligomers
  • the PMOs are water-soluble, uncharged or substantially uncharged antisense molecules that inhibit gene expression by preventing binding or progression of splicing or translational machinery components PMOs have also been to shown to inhibit or block viral replication (Stein, Skilling et al. 2001, McCaffrey, Meuse et al.
  • Antisense PMO oligomers have been shown to be taken up into cells and to be more consistently effective in vivo, with fewer nonspecific effects, than other widely used antisense oligonucleotides (see e.g. P Iversen, "Phosphoramidite Morpholino Oligomers", m Antisense Drug Technology, S T Crooke, ed , Marcel Dekker, Inc , New York, 2001)
  • further enhancement in uptake and antisense efficacy is desirable in order to fully explore their potential
  • each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
  • the above-described peptide when conjugated to an antisense oligomer having said substantially uncharged backbone (i.e. the same type of backbone as the nucleic acid analog), is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
  • conjugation of the peptide provides this activity in a cell-free translation assay, as described herein.
  • activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • activity may be enhanced by factors of 50, 100 or more.
  • the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • uptake may be enhanced by factors of 50, 100 or more.
  • the nucleic acid analog may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety, as described further below.
  • the optional Z subunits when present, are preferably selected from alanine, glycine, methionine, serine, and threonine.
  • the peptide may include zero, one, two, or three Z subunits.
  • Y is defined as a neutral amino acid subunit -C(O)-(CHR) n -NH-, where n is 2 to 7, the subunit is of the form -C(O)-(CH 2 ) n- i(CHR)-NH-, where R is H or methyl, and is preferably H.
  • the at least two Y subunits include
  • two neutral, hydrophobic ⁇ -amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
  • the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit, which acts as a linker.
  • the two Y subunits are contiguous.
  • each Y preferably represents a hydrophobic ⁇ -amino acid subunit having an aryl or aralkyl side chain, such as, for example, phenylalanine, tyrosine, tryptophan, leucine, isoleucine, or valine.
  • each Y is independently selected from phenylalanine and tyrosine.
  • One such embodiment is a peptide having the formula Arg 9 Phe 2 .
  • Such a peptide may be linked to the nucleic acid analog via a cysteine subunit attached to the terminal Phe.
  • each Y is a neutral, hydrophobic amino acid subunit -CO-(CH 2 ) endeavour.CHR-NH-, where n is 2 to 7 and R is H.
  • Y is a 6-aminohexanoic acid subunit, abbreviated herein as Ahx.
  • each X comprises a guanidyl side chain moiety, as in an arginine subunit.
  • Preferred peptides of this type include those comprising arginine dimers alternating with single Y subunits, where Y is preferably Ahx.
  • Examples include peptides having the formula (RYR) or the formula (RRY) 4> where Y is preferably Ahx.
  • the nucleic acid analog is preferably linked to a terminal Y subunit.
  • the nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone, is preferably a morpholino oligomer or a peptide nucleic acid.
  • the oligomer backbone is fully uncharged.
  • the nucleic acid analog is a morpholino oligomer, comprising morpholino subunits linked by phosphorus-containing linkages, one to three atoms long, between the morpholino nitrogen of one subunit and an exocyclic carbon at the morpholino 3 -position of an adjacent subunit.
  • the linkages are preferably two-atom uncharged phosphorodiamidate linkages, in accordance with the structure:
  • Conjugation of a peptide to a nucleic acid analog as described above forms a peptide- oligomer conjugate which is more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus.
  • the invention provides a peptide-nucleic acid analog conjugate, comprising a nucleic acid analog having a substantially uncharged backbone and a targeting base sequence, and covalently linked to the nucleic acid analog, a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least eight X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where
  • each X subunit independently represents arginine or an arginine analog, said analog being a cationic ⁇ -amino acid subunit comprising a side chain of the structure
  • R 1 N C(NH 2 )R 2 , where R 1 is H or R;
  • R 2 is R, NH 2 , NHR, or NR 2 , where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen;
  • R 1 and R 2 may together form a ring; and the side chain is linked to said amino acid subunit via R 1 or R 2 ;
  • said at least two Y subunits include (i) two neutral ⁇ -amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
  • (c) Z represents an amino acid subunit selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
  • the conjugate includes a peptide which, when conjugated to an antisense oligomer having the same type of substantially uncharged backbone as the nucleic acid analog, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
  • conjugation of the peptide provides this activity in a cell-free translation assay, as described herein.
  • activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten. In some embodiments, activity may be enhanced by factors of 50, 100 or more.
  • the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • activity may be enhanced by factors of 50, 100 or more.
  • the nucleic acid analog is preferably conjugated to the peptide via a linker moiety selected from a Y subunit, a cysteine subunit, and an uncharged, non-amino acid linker moiety.
  • the optional Z subunits when present, are preferably selected from alanine, glycine, methionine, serine, and threonine.
  • the peptide may include zero, one, two, or three Z subunits, and preferably includes at most one Z subunit.
  • the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit.
  • the two Y subunits are contiguous.
  • each Y represents a hydrophobic ⁇ -amino acid subunit having an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
  • each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine.
  • One such conjugate includes a peptide having the formula Arg 9 Phe 2 .
  • the linker moiety may be, for example, a cysteine subunit attached to the terminal Phe.
  • each Y is a neutral, hydrophobic amino acid subunit -C(O)-(CH 2 ) n- ⁇ (CHR)-NH-, where n is 2 to 7 and R is H. In one such embodiment, n is 5, such that Y is a 6-aminohexanoic acid subunit.
  • each X has a guanidyl side chain, e.g. as in arginine subunits. These include conjugates in which the peptide comprises arginine dimers alternating with single Y subunits. Examples of such peptides are the peptide having the formula (RYR) 4 and the peptide having the formula (RRY) 4 . In the latter case, the nucleic acid analog is preferably linked to a terminal Y subunit.
  • the nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone is preferably a morpholino oligomer, as described above, or a peptide nucleic acid.
  • the peptide-oligomer conjugates of the invention are more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system, including cell free translation systems; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus.
  • activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • the peptide is effective to enhance the transport of the agent into a cell relative to the agent in unconjugated form.
  • the agent may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
  • the optional Z subunits when present, are preferably selected from alanine, glycine, methionine, serine, and threonine.
  • the peptide may include zero, one, two, or three Z subunits, and preferably includes at most one Z subunit.
  • each X the side chain moiety is guanidyl; more preferably, each X is an arginine subunit.
  • the at least two Y subunits include two neutral, hydrophobic ⁇ -amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety.
  • the peptide has exactly two Y subunits which are contiguous or are flanking a cysteine subunit, which acts as a linker moiety; more preferably, the Y subunits are contiguous.
  • each Y represents a hydrophobic ⁇ -amino acid subunit having an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
  • each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine.
  • conjugates which consist of arginine subunits, phenylalanine subunits, a linker moiety, and the nucleic acid analog.
  • One such conjugate includes a peptide having the formula Arg 9 Phe 2 .
  • the linker moiety may be, for example, a cysteine subunit attached to the terminal Phe.
  • the invention provides a method for enhancing cell uptake of a pharmacological agent, the method comprising conjugating the agent to a transport peptide as described above; i.e.
  • each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
  • the invention also provides a composition useful for intracellular delivery of an nucleic acid analog in vivo, comprising a peptide-nucleic acid analog conjugate, as described above, and a suspension of insoluble gas-containing microbubbles in an aqueous vehicle comprising at least one filmogenic compound selected from a protein, surfactant, lipid, polysaccharide, and combinations thereof.
  • the microbubbles are suspended in an aqueous vehicle comprising albumin, and the insoluble gas is selected from the group consisting of perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane, and perfluoropentane.
  • the invention provides a modified nucleic acid analog, comprising (i) a plurality of subunits connected by intersubunit linkages, and supporting a sequence of bases effective to hybridize to a complementary-sequence target polynucleotide, to form a target/antisense duplex; and
  • R 1 N C(NH 2 )R 2 , where R 1 is H or R; R 2 is R, NH 2 , NHR, or NR 2 , where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R 1 and R 2 may together form a ring; and the side chain moiety is linked to said amino acid subunit via R 1 or R 2 .
  • the charged moiety is selected from the group consisting of guanidyl
  • the charged moiety is guanidyl.
  • the subunits are morpholino subunits, and the linkages are phosphorodiamidate linkages.
  • Figs. 1A-1D show several preferred morpholino-type subunits having 5-atom (A), six-atom (B) and seven-atom (C-D) linking groups suitable for forming polymers.
  • Figs. 2A-D show the repeating subunit segment of exemplary morpholino oligonucleotides, constructed using subunits A-D, respectively, of Figure 1.
  • Figs. 3A-G show exemplary X side chain structures, for use in various embodiments of the transporters of the invention.
  • Figs. 4A-D show oligomer-transporter conjugates and methods of their preparation, where Fig. 4C shows preparation of an in vivo cleavable conjugate.
  • Fig. 5 A shows adsorption of a fluorescein-labeled peptide-PMO conjugate (R 9 F 2 C-
  • Fig. 5B shows absorption with increasing concentration, measured at 37°C (D) and 17°C (*), in HeLa pLuc705 cells incubated with R 9 F 2 C-705-FL for 70 minutes.
  • Fig. 6 shows adsorption with increasing concentration in HeLa pLuc705 cells incubated with R 9 F 2 C-705-FL and with (D)-R 9 F 2 C-705-FL, without trypsin treatment (closed square and circle, respectively), and with trypsin treatment (open square and circle, respectively).
  • Fig. 7A shows internalization over time, as determined by flow cytometry in cells incubated with 1 ⁇ M fluorescein-labeled peptide-PMO conjugate (R 9 F 2 C-705-FL) and then treated with trypsin.
  • Fig. 7B shows internalization with increasing concentration, as determined by flow cytometry, in cells treated with R 9 F 2 C-705-FL, at 37°C (D) or 17°C (*) for 70 minutes, and then treated with trypsin.
  • Fig. 8 shows the level of luciferase production observed (expressed as RLU) in HeLa pLuc705 cells after 6 hrs incubation with 25 ⁇ M of each of the following: the PMO- transporter conjugates R 9 F 2 C-PMO; R 9 C-PMO; rTat(57-49)-C-PMO; and rTat(57-49)-PMO; a mixture of R 9 F 2 C and PMO; R 9 F 2 C alone; PMO alone; and PBS buffer.
  • the PMO used was the 705 sequence (SEQ ED NO: 1).
  • Fig. 9 shows viability of HeLa cells after 24 hrs incubation with 25 ⁇ M of the compositions listed for Fig. 8.
  • Fig. 10 shows the level of luciferase production normalized to microgram of protein (RLU/ ⁇ g protein) observed in HeLa Luc705 cells after 24 hrs incubation with conjugates of PMO(705) with RgF 2 , R 9 I 2 , R g F 3 , and R 9 F , respectively, where in each case the PMO was attached via a cysteine residue at the C-terminus (right side) of the peptide transporter as shown.
  • Fig. 11 shows (A) the level of luciferase production (RLU/ ⁇ g protein), as in Fig. 10, and (B) fluorescence in HeLa pLuc705 cells after 24 hrs incubation with conjugates of
  • Fig. 12 shows the level of luciferase production (RLU/ ⁇ g protein), as in Fig. 10, in HeLa pLuc705 cells after 24 hrs incubation with conjugates of PMO with R g F 2 , RsF ⁇ , and F 2 R 9 , respectively, where in each case the PMO was attached via a cysteine residue at the C-terminus of the peptide transporter.
  • Fig. 13 shows structures of bifunctional cross linkers that may be used to link transport polymers to antisense oligomers.
  • Figs. 14 shows the level of luciferase production (RLU/ ⁇ g protein), as in Fig. 10, in
  • HeLa pLuc705 cells after 24 hrs incubation with the conjugates R9F2-C-PMO and biotin-R9F2-C-PMO.
  • Fig. 15 shows the level of luciferase production (RLU/ ⁇ g protein), as in Fig. 10, in
  • Fig. 16 shows luciferase production (RLU/ ⁇ g protein), in HeLa pLuc705 cells treated with conjugates of antisense PMO (705) with different-sequence transporter peptides, at a concentration of 1 ⁇ M (dark bars) or 5 ⁇ M (light bars) in serum-free medium for 6 hours, where in each case the PMO is linked to the C (cysteine) residue.
  • Fig. 17 shows luciferase production (RLU/ ⁇ g protein) in HeLa pLuc705 cells treated with R9F2-C-PMO-705 (closed square) and the following control PMOs containing either two or four mismatches, scrambled or irrelevant sequences: R9F2-C-705 2 JVIM (closed circle), R 9 F 2 -C-705 4MM (D), R 9 F 2 -C-705 SCR (V) and R 9 F 2- C-cmyc (*).
  • Fig. 18 shows luciferase production (RLU/ ⁇ g protein) in HeLa pLuc705 cells treated with R 9 F 2 C-PMO-705, measured at several times points.
  • Figs. 19A-G show examples of other uncharged antisense oligomer types which may be modified to contain the transport peptides as described herein.
  • Fig. 20 shows a method of preparing a PMO having a modified intersubunit side chain containing cationic charge moieties.
  • Figs. 21-23 represent the results of inhibition of cell-free translation by peptide PMO conjugates directed to viral sequences placed immediately upstream of the firefly luciferase reporter gene.
  • Fig. 23 represents results obtained with the pDCLD reporter gene construct.
  • Fig. 24 shows the level of luciferase production observed (RLU per microgram of protein) in HeLa pLuc/705 cells after 24 hours treatment with 10 ⁇ M of each of the following: the PMO (705-FL) conjugated to R 9 F 2 , (RRAhx) 4 , (RAhxR) 4 , (AhxRR) 4 , (RAhxR) 3 , (RahxR) 2 R, (RAhxR) 2 , (RKAhx) 4 , or (RHAhx) 4 .
  • Figs. 25 A-B and 26A-B show that a transport peptide containing 6-aminohexanoic acid (Ahx), (RAhxR) 4 , is resistant to proteinase K degradation and that a transport peptide containing all natural amino acids, R 9 F 2 , was not resistant to proteinase K degradation.
  • Ahx 6-aminohexanoic acid
  • R 9 F 2 transport peptide containing all natural amino acids
  • Fig. 27 shows the in vivo bioavailability and relative intracellular delivery of unconjugated and peptide conjugated, fluorescein-labeled PMO in mouse lymph node and spleen cells and subpopulations of cells from those tissues.
  • Fig. 28 shows the results of inhibition of cell-free translation by peptide-PMO conjugates targeted to a region of the human c-myc gene that surrounds the translational start codon fused to the firefly luciferase reporter gene.
  • Fig. 29 shows the computer-predicted RNA secondary structure that surrounds the Dengue virus translational start codon and the target of the DEN AUG antisense PMO (highlighted, nucleotides 87-106).
  • the AUG start codon is at nucleotides 97-99.
  • Alkyl refers to a fully saturated monovalent radical containing carbon and hydrogen, which may be branched, linear, or cyclic (cycloalkyl). Examples of alkyl groups are methyl, ethyl, n-butyl, t-butyl, n-heptyl, isopropyl, cyclopropyl, cyclopentyl, ethylcyclopentyl, and cyclohexyl.
  • lower alkyl alkyl groups having one to six carbon atoms
  • lower alkyl alkyl groups having one to six carbon atoms
  • lower alkyl refers to Q to C 4 alkyl.
  • alkenyl refers to an unsaturated monovalent radical containing carbon and hydrogen, which may be branched, linear, or cyclic.
  • the alkenyl group may be monounsaturated or polyunsaturated.
  • alkenyl groups having one to six carbon atoms referred to as "lower alkenyl”.
  • lower alkenyl refers to C to C 4 alkenyl.
  • Aryl refers to a substituted or unsubstituted monovalent aromatic radical, generally having a single ring (e.g., benzene) or two condensed rings (e.g., naphthyl). Generally preferred are aryl groups having a single ring. Preferably, the rings are hydrocarbon rings.
  • “Aralkyl” refers to an alkyl, preferably lower (C1-C4 , more preferably C ⁇ -C 2 ) alkyl, substituent which is further substituted with an aryl group; examples are benzyl (-CH 2 C 6 H 5 ) and phenethyl (-CH 2 CH 2 C 6 H 5 ).
  • substituted refers to replacement of a hydrogen atom with a lower alkyl group or a neutral heteroatom-containing substituent, such as, for example, halogen, e.g. fluorine, chlorine, or bromine; hydroxy, alkoxy, thiol, alkylthio, oxo (keto), nitro, cyano, or various esters such as carboxylic, sulfonic, or phosphonic.
  • substituents are selected from hydroxy, lower alkoxy, thiol, lower alkylthio, and oxo (keto).
  • a nucleic acid analog having a "substantially uncharged” backbone is one having at most one charged (at physiological pH) intersubunit linkage for every four uncharged (at physiological pH) linkages, preferably at most one for every eight, and more preferably at most one for every sixteen uncharged linkages.
  • the nucleic acid analogs described herein are fully uncharged.
  • terms such as “charged”, “uncharged”, and “neutral” used herein refer to the state of the group so described at physiological pH, i.e. about 7.4.
  • the "backbone” of such an analog refers to the structure supporting the base-pairing moieties; i.e., for a morpholino oligomer, as described below, the “backbone” includes morpholino ring structures connected by phosphorus-containing linkages.
  • a “target sequence” refers to a complementary or near-complementary sequence to which an antisense oligomer is targeted, by virtue of its base sequence, and is able to stably bind under physiological conditions of temperature and pH.
  • antisense activity in reference to steric blocking oligomers, refers to the ability of an antisense oligomer to bind to its target sequence and inhibit the function of that target sequence, or closely adjacent sequences, e.g., blocking translation of an mRNA, blocking cis-acting elements in viral RNA replication, or blocking the accurate splicing of pre-RNA.
  • the invention provides a peptide-nucleic acid analog conjugate, comprising a nucleic acid analog having a substantially uncharged backbone and a targeting base sequence, and covalently linked to the nucleic acid analog, a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least eight X subunits, at least two Y subunits, and at most three Z subunits, where >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic ⁇ -amino acid subunit comprising a side chain of the structure R ⁇ COM ⁇ R 2 (see Fig.
  • R 1 is H or R
  • R 2 is R, NH 2 , NHR, or NR 2 , where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen
  • R 1 and R 2 may together form a ring
  • the side chain is linked to said amino acid subunit via R 1 or R 2 ;
  • said at least two Y subunits include
  • Z represents an amino acid subunit selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
  • Z may also include amino acids having side chains which are one- or two-carbon homologs of naturally occurring side chains, excluding side chains which are negatively charged at physiological pH (e.g. carboxylate side chains). Preferably, the side chains are neutral. More preferred side chains are side chains of naturally occurring amino acids.
  • the optional Z subunits are preferably selected from alanine, glycine, methionine, serine, and threonine.
  • the peptide may include zero, one, two, or three Z subunits, and preferably includes at most two Z subunits.
  • the conjugate includes a peptide which, when conjugated to an antisense oligomer having the same type of substantially uncharged backbone as the nucleic acid analog, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
  • conjugation of the peptide provides this activity in a cell-free translation assay, as described herein.
  • activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • the nucleic acid analog is preferably conjugated to the peptide via a linker moiety selected from a Y subunit, a cysteine subunit, and an uncharged, non-amino acid linker moiety.
  • the side chain moiety is guanidyl, as in the amino acid subunit arginine (Arg).
  • the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit.
  • the two Y subunits are contiguous.
  • Preferred side chains for Y subunits of type (i) include side chains of naturally occurring amino acids and one- or two-carbon homologs thereof, excluding side chains which are charged at physiological pH. More preferred side chains are side chains of naturally occurring amino acids.
  • the side chain is an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
  • each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine.
  • One such conjugate includes a peptide having the formula Arg 9 Phe 2 .
  • the linker moiety may be, for example, a cysteine subunit attached to the terminal Phe.
  • each Y is a neutral, hydrophobic amino acid subunit
  • each X has a guanidyl side chain, e.g. as in arginine subunits.
  • arginine subunits include conjugates in which the peptide comprises arginine dimers alternating with single Y subunits, where Y is preferably Ahx.
  • Examples of such peptides are the peptide having the formula (RYR) 4 and the peptide having the formula (RRY) 4 ⁇ where Y is preferably Ahx. In the latter case, the nucleic acid analog is preferably linked to a terminal Y subunit.
  • the nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone is preferably a morpholino oligomer, as described herein, or a peptide nucleic acid.
  • the peptide-oligomer conjugates of the invention are more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system, including cell free translation systems; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus.
  • activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • conjugates of other pharmacological agents not limited to nucleic acid analogs, linked to a peptide transporter where the Y subunits are of type (i) above.
  • the peptide consists of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six, and preferably at least eight, X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits.
  • each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms.
  • the agent may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
  • the compound to be delivered is preferably a biologically active agent, e.g. a therapeutic or diagnostic agent, although it may be a compound employed for detection, such as a fluorescent compound.
  • Biologically active agents include drug substances selected from biomolecules, e.g. peptides, proteins, saccharides, or nucleic acids, particularly antisense oligonucleotides, or "small molecule” organic or inorganic compounds.
  • a "small molecule” compound may be defined broadly as an organic, inorganic, or organometallic compound which is not a biomolecule as described above. Typically, such compounds have molecular weights of less than 1000, or, in one embodiment, less than 500.
  • the agent to be delivered does not include single amino acids, dipeptides, or tripeptides. In another embodiment, it does not include short oligopeptides; that is, oligopeptides having fewer than six amino acid subunits. In a further embodiment, it does not include longer oligopeptides; that is, oligopeptides having between seven and 20 amino acid subunits. In a still further embodiment, it does not include polypeptides, having greater than 20 amino acid subunits, or proteins.
  • the transport peptide is effective to enhance the transport of the agent into a cell relative to the agent in unconjugated form, and relative to the agent conjugated to a corresponding peptide lacking the Y subunits.
  • transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
  • Nucleic acid analogs included in the conjugates of the invention are substantially uncharged synthetic oligomers capable of base-specific binding to a target sequence of a polynucleotide, e.g. antisense oligonucleotide analogs.
  • Such analogs include, for example, methylphosphonates, peptide nucleic acids, substantially uncharged N3'- P5' phosphoramidates, and morpholino oligomers.
  • a nucleic acid analog having a "substantially uncharged" backbone is one having at most one charged (at physiological pH) intersubunit linkage for every four uncharged (at physiological pH) linkages, preferably at most one for every eight, and more preferably at most one for every sixteen uncharged linkages.
  • the nucleic acid analogs described herein are fully uncharged.
  • the base sequence of the nucleic acid analog, provided by base pairing groups supported by the analog backbone can be any sequence, where the supported base pairing groups include standard or modified A, T, C, G and U bases or the non-standard inosine (I) and 7-deaza-G bases.
  • a preferred nucleic acid analog is a morpholino oligomer, i.e. an oligonucleotide analog composed of morpholino subunit structures of the form shown in Fig. 1, where (i) the structures are linked together by phosphorus-containing linkages, one to three atoms long, preferably two atoms long, and preferably uncharged, joining the morpholino nitrogen of one subunit to the 5' exocyclic carbon of an adjacent subunit, and (ii) Pj and P j are purine or pyrimidine base-pairing moieties effective to bind, by base-specific hydrogen bonding, to a base in a polynucleotide.
  • a morpholino oligomer i.e. an oligonucleotide analog composed of morpholino subunit structures of the form shown in Fig. 1, where (i) the structures are linked together by phosphorus-containing linkages, one to three atoms long, preferably two atoms long, and
  • the purine or pyrimidine base-pairing moiety is typically adenine, cytosine, guanine, uracil or thymine.
  • the synthesis, structures, and binding characteristics of morpholino oligomers are detailed in U.S. Patent Nos. 5,698,685, 5,217,866, 5, 142,047, 5,034,506, 5, 166,315, 5,521,063, and 5,506,337, all of which are incorporated herein by reference.
  • the subunit shown Fig. IB having a two-atom linkage, is used for 6-atom repeating- unit backbones, as shown in Fig. 2B.
  • the atom Yi linking the 5' morpholino carbon to the phosphorus group may be sulfur, nitrogen, carbon or, preferably, oxygen.
  • the X moiety pendant from the phosphorus is any stable group which does not interfere with base-specific hydrogen bonding.
  • Preferred groups include alkyl, alkoxy, thioalkoxy, and alkyl amino, including cyclic amines, all of which can be variously substituted, as long as base-specific bonding is not disrupted.
  • Alkyl, alkoxy and thioalkoxy preferably include 1-6 carbon atoms.
  • Alkyl amino preferably refers to lower alkyl (Ci to C ⁇ ) substitution, and the cyclic amines are preferably 5- to 7-membered nitrogen heterocycles optionally containing 1 -2 additional heteroatoms selected from oxygen, nitrogen, and sulfur.
  • Z is sulfur or oxygen, and is preferably oxygen.
  • a preferred morpholino oligomer is a phosphorodiamidate-linked morpholino oligomer, referred to herein as a PMO. Such oligomers are composed of morpholino subunit structures of the form shown in Fig.
  • Desirable chemical properties of the morpholino-based oligomers include the ability to selectively hybridize with a complementary-base target nucleic acid, including target RNA, with high Tm, even with oligomers as short as 8-14 bases, the ability to be actively transported into mammalian cells, and the ability of an oligome ⁇ RNA heteroduplex to resist RNAse degradation.
  • a "substantially uncharged" morpholino oligomer includes at most one charged intersubunit linkage for every four, preferably for every eight, and more preferably for every sixteen, uncharged intersubunit linkages.
  • Any charged linkages are preferably charged phosphoramidate (or thiophosphoramidate) linkages, e.g. a linkage as shown in Fig. 2B where X is O " or S " .
  • the morpholino oligomers are fully uncharged.
  • the morpholino oligomer is about 8-40 subunits in length. More typically, the oligomer is about 8-20, about 8-16, about 10-30, or about 12-25 subunits in length. For some applications, such as antibacterial, short oligomers, e.g. from about 8-12 subunits in length, can be especially advantageous, particularly when attached to a peptide transporter as disclosed herein.
  • C. Linkers The transport peptide can be linked to the agent to be delivered by a variety of methods available to one of skill in the art. Exemplary methods are provided in Examples 2-5 below and illustrated in Figs. 4A-D.
  • the transport peptide contains a single cysteine residue whose side chain thiol is used for linking, such as shown in Figs. 4B and 4C, where the cysteine is a terminal cysteine.
  • the linker may also be provided by a hydrophobic subunit such as those defined as Y, e.g. a ⁇ -alanine or longer non- ⁇ amino acid subunit, as shown, for example, in Fig. 4D.
  • the linkage point can be at various locations along the transporter. In selected embodiments, it is at a terminus of the transporter. Typically, it is adjacent (or even between) the hydrophobic residues of the transporter.
  • Multiple transporters can be attached to a single compound if desired; alternatively, multiple compounds can be conjugated to a single transporter.
  • the transporter can be attached at the 5' end of the PMO via an amine capping moiety, as described in Examples 2-3 and illustrated in Figs. 4A and 4D.
  • the transporter may be attached at the 3' end, e.g. via a morpholino ring nitrogen, as described in Example 4 and shown in Fig. 4B, or via the side chain of an intersubunit linkage, either at a terminus or an internal linkage.
  • the linker between the transport peptide and the PMO may also consist of natural or non-natural amino acids (e.g., 6-aminohexanoic acid or ⁇ -alanine) added to the peptide at the C-terminal and as described in Example 2.
  • the linker may also comprise a direct bond between the carboxy terminus of a transporter peptide and an amine or hydroxy group of the PMO, formed by condensation promoted by e.g. carbodiimide.
  • the linker may comprise any nonreactive moiety which does not interfere with transport or function of the conjugate.
  • the linker preferably includes a chain of up to about sixteen atoms, including lengths of up to 12 or up to 8 atoms, comprising linkages selected from alkyl, ether (e.g. PEG linkages), thioether, ester, amide, amino, carbamate, or combinations thereof. More preferably, the linkages are selected from alkyl, ether, and amide, when linkages which are stable (non-cleavable) in vivo are desired.
  • Linkers can be selected from those which are non-cleavable under normal conditions of use, e.g., containing an ether, thioether, amide, or carbamate bond. In other embodiments, it may be desirable to include a linkage between the transporter moiety and compound which is cleavable in vivo. Bonds which are cleavable in vivo are known in the art and include, for example, carboxylic acid esters, which are hydrolyzed enzymatically, and disulfides, which are cleaved in the presence of glutathione.
  • a photolytically cleavable linkage such as an ort/r ⁇ -nitrophenyl ether
  • a photolytically cleavable linkage such as an ort/r ⁇ -nitrophenyl ether
  • N-succinimidyl 3 -(2-pyridyldithio) propionate (SPDP) or succinimidyloxycarbonyl ⁇ -methyl- ⁇ -(2-pyridyldithio) toluene (SMPT), is described in Example 5 and illustrated in Fig. 4C.
  • Exemplary heterobifunctional linking agents which further contain a cleavable disulfide group include N-hydroxysuccinimidyl 3-[(4-azidophenyl)dithio]propionate and others described in Vanin, E.F. and Ji, T.H., Biochemistry 20:6754-6760 (1981).' D Exemplary Peptides and Conjugates
  • the peptides include an N-terminal amino group and C-terminal amide (e.g., NH 2 -CYGRKKRRQRRR-CONH 2 ) or free carboxyl group (e.g.
  • Y residues of peptides of the invention designated by SEQ ED NOs 13-32 are indicated in boldface, and internal cysteine residues used for linkage to the PMO are shown in italics (When no cysteine linker is shown, the peptide is typically linked via its C-terminus, i.e. at the right side as shown )
  • Exemplary peptides containing 6-aminohexanoic acid (Ahx) subunits are shown in Table 1 as SEQ ID NOs 33-41
  • the structure of the (RAhxR) 4 transport peptide (SEQ ID NO 34) conjugated to a PMO via an Ahx- ⁇ Ala linker is shown in Figure 4D
  • the oligomer is a substantially uncharged morpholino oligomer as described above
  • the antisense oligomer includes a base sequence effective to hybridize to a target sequence which includes a splice site in a selected preprocessed mRNA (pre-mRNA)
  • the antisense oligomer may also include a base sequence effective to hybridize to a target sequence which includes a translation start site in a selected mRNA
  • the antisense oligomer may also include a base specific sequence effective to hybridize to a target sequence required for viral replication
  • the antisense oligomer may be an antibacterial agent, e.g.
  • the transport peptides as described above greatly enhance cell entry of attached compounds, relative to uptake of the compound in the absence of the attached peptide transport moiety, and relative to uptake by an attached transport moiety lacking the Y subunits
  • Such enhanced uptake is preferably evidenced by at least a one-fold increase, and preferably a more than two-fold increase, in the uptake of the compound into mammalian cells, relative to uptake of the agent by an attached transport moiety lacking the Y subunits
  • Uptake is preferably enhanced at least twenty fold, and more preferably at least forty fold, relative to the unconjugated compound
  • Uptake is preferably measured in HeLa cells or in mononuclear blood cells, particularly lymph or spleen derived cells, such as lymphocytes or fibroblasts, by processes such as described in Materials and Methods, below, for HeLa cells, under the headings "Cell Culture” through “Flow Cytometry” See also Example 6, Example 9, Section A below for evaluation of transport only, and Section B below for evaluation of transport and antisense activity
  • a further benefit of the transport moiety is the enhancement of binding of an attached nucleic acid analog to its target sequence
  • the transport moieties of the invention are shown herein to lower the concentration of an uncharged antisense oligomer effective to achieve antisense activity, as measured in both tissue culture and cell-free systems
  • Tissue culture experiments provide indications of enhanced antisense activity, due to enhanced intracellular delivery, enhanced antisense activity, e.g. binding of the antisense oligomer to its target sequence, or a combination of these phenomena.
  • Cell-free translation systems provide a means to assess, independently of transport, the enhancing effect of the conjugated peptide on the antisense oligomer' s ability to bind to its target and, through steric blocking, inhibit translation of downstream sequences (or inhibit aberrant splicing, as in the assay of Example 6).
  • Cell-free translation assays designed to test the antisense effect of R 9 F 2 -PMO and (RAhxR) 4 -PMO conjugates demonstrate between 10 fold and 500 fold improvement in antisense activity compared to the unconjugated PMO (see, e.g., Example 8 and Figures 21-23 and 28).
  • enhancing the translation inhibiting ability or “enhanced translation inhibiting ability” provided by the conjugated peptide, as used herein, preferably refer to antisense (translation inhibiting) activity as measured in such a cell free system, such as described in Materials and Methods, below, under the heading "Cell-free translations assays”. See also Example 9 and Section C below.
  • A. Transporter-mediated delivery of morpholino oligomers into cells The cellular uptake of three test substances, including (1) unconjugated PMO (SEQ ID NO: 1, also designated herein as “705" or "PMO 705"), (2) a mixture of unconjugated PMO and the transport peptide R 9 F 2 (SEQ D NO: 13)-C, and (3) a covalent conjugate of the PMO and the transport peptide (R 9 F 2 -C-705), were determined by fluorescent microscopy in four cell lines: HeLa pLuc705 derived from HeLa S3, HeLa, NIH3T3, and Jurkat. HeLa pLuc/705 (Kang, Cho et al.
  • HeLa S3 cell line stably transfected with a plasmid carrying the luciferase coding sequence interrupted by a mutated human ⁇ - globin intron 2 (Gene Tools, Philomath, OR).
  • Other cell lines were obtained from ATCC (Manassas, VA).
  • the PMOs were 3 '-labeled with fluorescein as described in Example 1. To avoid artifacts, all fluorescent images were taken from live cells, and no fixative agent or mounting media were used.
  • fluorescence was observed in 100% of the cells, although patterns varied among the different cell lines as follows.
  • the NEH3T3 cells had very bright and diffused cytosolic and nuclear fluorescence with fewer punctate spots than other cell lines.
  • the HeLa cells had mostly diffused fluorescence with more distinct punctate spots than NIH3T3.
  • the HeLa S3 cells appeared to have less intense cytosolic diffuse fluorescence but with a very bright fluorescent spot localized near or in the nucleus.
  • the Jurkat cells had the lowest level of fluorescence among these cell lines.
  • Fig. 5 A fluorescence of cells incubated with R 9 F 2 C-PMO increased within minutes and reached maximum intensity between 30-45 minutes over a 900 minute study period.
  • the fluorescence of cells incubated at 37°C was similar to those incubated at 17°C over a concentration range of 0.1 to 5 ⁇ M (Fig. 5B).
  • the adsorption appeared to be saturable, with an increase in fluorescence observed between 0.1-1 ⁇ M, but not between 1-5 ⁇ M.
  • HeLa or NIH3T3 cells were incubated with conjugate, then trypsinized, as described below in Materials and Methods, washed, and replated.
  • the trypsinized cells had much less fluorescence than non-trypsinized cells (Fig. 6), though patterns of fluorescence were similar.
  • Fig. 7A As shown in Fig. 7A, gradual increases in fluorescence, due to conjugate internalization, are observed up to 700 minutes from incubation. Internalization is also seen to be temperature- and concentration-dependent, as shown in Fig. 7B.
  • the profile shown in Fig. 7B is similar to that shown by the endocytosis marker FM4-64 (a fluorescent, lipophilic dye which labels the plasma membrane and is then endocytosed in a time-, temperature-, and energy-dependent manner). Internalization of conjugate was almost completely inhibited in cells pre-incubated with the metabolic inhibitor, NaN 3 , indicating that internalization of the peptide-PMO conjugate is an energy dependent process.
  • FM4-64 a fluorescent, lipophilic dye which labels the plasma membrane and is then endocytosed in a time-, temperature-, and energy-dependent manner
  • oligomer-transporter moiety conjugates in accordance with the invention were tested for antisense activity in vitro (Example 6).
  • the data described below was obtained by targeting a ⁇ -globin splice correction sequence fused to luciferase.
  • the assay uses HeLa cells stably transfected with plasmid pLuc/705, which has a luciferase gene interrupted by a human ⁇ -globin intron mutated at nucleotide 705, thus causing incorrect splicing.
  • An antisense oligonucleotide targeting the 705 splice site when delivered effectively, corrects splicing and allows luciferase expression.
  • a conjugate consisting of the antisense PMO linked, via a cysteine residue, to a peptide having the sequence Arg 9 Phe 2 (R 9 F 2 , SEQ ID NO: 13) was much more effective in suppressing aberrant splicing than conjugates containing the peptides rTat(57-49) (RRRQRRKKR) and R 9 , also linked to the PMO via a cysteine residue.
  • Fig. 9 gives the level of viable HeLa cells after 24 hrs incubation with several of these conjugates at a concentration of 25 ⁇ M, showing the low toxicity of the conjugates.
  • Figs. 10-14 show the effect of various structural modifications of the transporter on the antisense activity of the PMO-transporter conjugates.
  • results are expressed in relative light units normalized to microgram of protein, based on luciferase expression in the pLuc705 assay described above.
  • the PMO is attached, via a cysteine residue, at the C-terminus or right side of the transporter sequence as written and to the 5 '-terminus, or left side as written, of the PMO.
  • Fig. 10 shows the effect of varying the nature or length of the hydrophilic segment of the transporter.
  • phenylalanine (Phe or F)-containing transporters appeared to be more effective than isoleucine (He or I)-containing transporters. Increasing the length of the hydrophobic segment from 2 to 3 to 4 amino acid subunits did not appear to increase effectiveness.
  • oligopeptides of the series RnF2 oligopeptides where n was 6 or less were much less effective than those where n was 8 or 9. See also Moulton, Nelson et ai, 2004, which is incorporated herein in its entirety by reference.
  • the position of the hydrophobic segment can be altered.
  • the R 9 segment is at the C-terminus and is attached to the PMO.
  • the data shows that the sequence of cationic subunits can be non-contiguous (R 5 F 2 R,) Further examples are given in Fig. 15, below.
  • Table 2 shows the level of luciferase production (i.e., antisense activity) in HeLa pLuc705 cells after 24 hrs incubation with R 9 F 2 -PMO conjugates, linked by either a cleavable linker or a non-cleavable linker of various lengths, where in each case the PMO was attached via a cysteine residue at the C-terminus of the peptide transporter.
  • the structures of the bifunctional cross linkers used in this study are shown in Fig. 13.
  • the use of a cleavable (disulfide) linker had no significant effect on activity. See also Moulton, Nelson et al, 2004.
  • FIGs. 15 and 16 show the results of the pLuc/705 assay carried out with conjugates of PMO 705 (SEQ ED NO: 1) linked to the transport peptides having SEQ ID NO: 13 and 16-26 as shown in Table 1.
  • the PMO is linked via a C-terminal or internal cysteine (C) residue.
  • transporters in which the Y subunits are internal i.e.
  • the assay was carried out with R 9 F 2 -C-PMO conjugates of three mismatched- sequence control PMOs, designated 705 2MM (two mismatches, SEQ ID NO:2), 705 4I IM (four mismatches, SEQ ID NO:3) and 705 SCR (scrambled, SEQ D NO:4) (see Table 1 for sequences).
  • 705 2MM two mismatches, SEQ ID NO:2
  • 705 4I IM four mismatches, SEQ ID NO:3
  • 705 SCR scrambled, SEQ D NO:4
  • Fluorescence microscopy and the splice-correction assay were also used to determine the time required for the conjugate to enter the cytoplasm and nuclei of cells.
  • HeLa, NEH3T3 or HeLa pLuc/705 cells were treated with the R 9 F 2 -C-PMO conjugate for 20 5 minutes and imaged.
  • a nuclear stain, dihydroethidium (DHE, Molecular Probes, Eugene, OR) was used to locate the nucleus. Diffuse green fluorescence was seen in both cytoplasm and nucleus, and overlapped with the intense red of DHE in the nucleus.
  • DHE dihydroethidium
  • peptide-conjugated and unconjugated PMOs were tested in a cell-free translation system for their ability to sterically block translation of a downstream reporter gene.
  • the effects of various antisense PMOs on translation of in vitro transcribed RNA from plasmids containing various viral nucleotide sequences fused directly upstream of the coding region for firefly luciferase (fLUC) were measured by in vitro translation reactions in a commercially available rabbit reticulocyte lysate (RRL) system, as described in Example 9.
  • the enhanced antisense activity observed with the peptide conjugates of the invention in cell free translation systems may be due to a localized disruption of RNA secondary structure by the peptide.
  • One construct used in the RRL assays, pDCLD contains the 5' most 204 bases of the Dengue virus genome, which encodes the initial 35 amino acids of the polyprotein, placed in frame with the fLUC gene.
  • the computer-predicted RNA structure for this region shown in Figure 29, which was generated using the 'mfold' RNA folding program (Zuker 2003), indicates extensive secondary structure.
  • the secondary structure shown in Figure 29 also agrees with that predicted by Khromykh et al.
  • the transporters and conjugates of the invention are particularly useful for targeting a substantially uncharged antisense oligomer, such as a PMO, to a cell nucleus, by exposing the cell to a conjugate comprising the oligomer covalently linked to a transport peptide as described above.
  • the transporters are effective to deliver the antisense oligomer across both the cell and nuclear membranes, and to enhance the antisense activity of the oligomer, as demonstrated above.
  • Nuclear delivery allows targeting of splice sites, which can be implemented for generating dominant/negative proteins, which preserve, for example, the feedback function of a protein, but not its enzymatic activity.
  • splice donor or acceptor sites in pre-mRNA that eliminate from the mature spliced mRNA one or more exons encoding unwanted functions.
  • Useful gene targets for this approach include, but are not limited to, CD86, c-FLIP, CTLA-4, TGF-b and c-myc.
  • the translation start site i.e. the AUG start codon
  • the inhibition of viral replication can be accomplished either by blocking translation of essential viral proteins or by targeting regions of the viral genome required for either nucleic acid replication or mRNA transcription.
  • These cis-acting elements are often located in untranslated regions (UTRs) of the viral genome and typically found at either or both the 5' and 3' termini of the genome. Examples of these elements include internal ribosome entry sites (IRES) as found in hepatitis C virus (HCV), transcriptional regulatory sequences (TRS) as found in the human coronavirus that causes systemic acquired respiratory syndrome (SARS), cyclization sequences (CS) as found in flaviviruses, and the tRNA primer binding site (PBS) found in retroviruses such as human immunodeficiency virus (HIV).
  • IVS internal ribosome entry sites
  • SARS systemic acquired respiratory syndrome
  • CS cyclization sequences
  • PBS tRNA primer binding site
  • the methods and compositions of the invention described herein provide the ability to more effectively target these regions of viral genomes and inhibit viral replication.
  • PMO conjugates find use, in general, in any indication in which delivery of an oligonucleotide to a cell is desired, including antisense applications.
  • indications include, but are not limited to, proliferative disorders or ischemia, by targeting p53; polycystic kidney disease, restenosis, and cancer, by targeting c-myc; pulmonary inflammation or septic shock, by targeting TNF- ⁇ ; alteration of drug metabolism, by targeting P450 enzymes; prostate cancer, by targeting ⁇ -HCG or androgen receptor; glioblastoma, by targeting integrin ⁇ V.
  • Treatment of stem cells with antisense oligonucleotides targeted to genes preferentially expressed in such cells can also be used for cancer treatment (e.g.
  • Treatment of certain immunologic conditions can be facilitated using antisense oligonucleotides conjugated to peptides that can provide intracellular delivery specifically to naive or activated lymphocytes (e.g. co-owned and pending US application 60/505,418).
  • the conjugates are particularly useful in treatment of vascular proliferative disorders such as restenosis.
  • Areas of vessel injury include, for example, restenosis or renarrowing of the vascular lumen following vascular intervention, such as coronary artery balloon angioplasty, with or without stent insertion. Restenosis is believed to occur in about 30% to 60% of lesions treated by angioplasty and about 20% of lesions treated with stents within 3 to 6 months following the procedure. (See, e.g., Dev, N.B. et al, Cathet Cardiovasc Diagn 45(3):337-45, 1998).
  • Stenosis can also occur after a coronary artery bypass operation, wherein heart surgery is done to reroute, or "bypass," blood around clogged arteries and improve the supply of blood and oxygen to the heart.
  • the stenosis may occur in the transplanted blood vessel segments, and particularly at the junction of replaced vessels.
  • Stenosis can also occur at anastomotic junctions created for dialysis.
  • a PMO conjugate preferably targeting c-myc
  • a coated stent in a soaking solution for treatment of saphenous veins, or otherwise delivered to the site of vascular injury.
  • Microbubble compositions such as described below, have been found particularly useful in delivery of attached molecules, such as oligonucleotides, to areas of thrombosis or vessel injury, e.g. damaged endothelium (see e.g. Kipshidze et al, 2001, 2002; Kim et al, 2001; PCT Pubn. No. WO 2000/02588) as well as to selected organs such as the liver and kidney.
  • a preferred antirestenotic composition is an anti-c- myc PMO (e.g. SEQ ID NO:5) conjugated to an (RAhxR) 4 (SEQ ID NO:34) transport peptide through an Ahx- ⁇ Ala linker (as shown in Fig. 4D).
  • Aqueous suspensions of insoluble gas-containing microbubbles have been shown to be effective vehicles for delivery of oligonucleotides, including PMOs, as described, for example, in co-owned U.S. Patents 5,849,727 and 6,117,858 and pending US application 10/668,988.
  • the composition comprises a liquid suspension, preferably an aqueous suspension, of microbubbles containing a blood-insoluble gas.
  • the microbubbles are preferably about 0.1 to 10 ⁇ in diameter.
  • any blood-insoluble gas which is nontoxic and gaseous at body temperature can be used.
  • the insoluble gas should have a diffusion coefficient and blood solubility lower than nitrogen or oxygen, which diffuse in the internal atmosphere of the blood vessel.
  • useful gases are the noble gases, e.g. helium or argon, as well as fluorocarbon gases and sulfur hexafluoride.
  • perfluorocarbon gases such as perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane, and perfluoropentane, are preferred.
  • the gaseous microbubbles are stabilized by a fluid filmogenic coating, to prevent coalescence and to provide an interface for binding of molecules to the microbubbles.
  • the fluid is preferably an aqueous solution or suspension of one or more components selected from proteins, surfactants, lipids, including phospholipids, and polysaccharides.
  • the components are selected from proteins, surfactant compounds, and polysaccharides.
  • Suitable proteins include, for example, albumin, gamma globulin, apotransferrin, hemoglobin, collagen, and urease.
  • Human proteins e.g. human serum albumin (HSA), are preferred.
  • Conventional surfactants include compounds such as alkyl polyether alcohols, alkylphenol polyether alcohols, and alcohol ethoxylates, having higher alkyl (e.g. 6-20 carbon atom) groups, fatty acid alkanolamides or alkylene oxide adducts thereof, and fatty acid glycerol monoesters.
  • Surfactants particularly intended for use in microbubble contrast agent compositions are disclosed, for example, in Nycomed Imaging patents US 6,274,120 (fatty acids, polyhydroxyalkyl esters such as esters of pentaerythritol, ethylene glycol or glycerol, fatty alcohols and amines, and esters or amides thereof, lipophilic aldehydes and ketones; lipophilic derivatives of sugars, etc.), US 5,990,263 (methoxy-terminated PEG acylated with e.g. 6-hexadecanoyloxyhexadecanoyl), and US 5,919,434.
  • Nycomed Imaging patents US 6,274,120 (fatty acids, polyhydroxyalkyl esters such as esters of pentaerythritol, ethylene glycol or glycerol, fatty alcohols and amines, and esters or amides thereof, lipophilic aldehydes and ketones; lipophilic derivatives of sugars
  • filmogenic synthetic polymers may also be used; see, for example, U.S. Patent Nos. 6,068,857 (Weitschies) and 6,143,276 (Unger), which describe microbubbles having a biodegradable polymer shell, where the polymer is selected from e.g. polylactic acid, an acrylate polymer, polyacrylamide, polycyanoacrylate, a polyester, polyether, polyamide, polysiloxane, polycarbonate, or polyphosphazene, and various combinations of copolymers thereof, such as a lactic acid-glycolic acid copolymer.
  • the polymer is selected from e.g. polylactic acid, an acrylate polymer, polyacrylamide, polycyanoacrylate, a polyester, polyether, polyamide, polysiloxane, polycarbonate, or polyphosphazene, and various combinations of copolymers thereof, such as a lactic acid-glycolic acid copolymer.
  • compositions have been used as contrast agents for diagnostic ultrasound, and have also been described for therapeutic applications, such as enhancement of drug penetration (Tachibana et al, U.S. Patent No. 5,315,998), as thrombolytics (Porter, U.S. Patent No. 5,648,098), and for drug delivery (Unger, U.S. Patent No. 6,143,276; Klaveness et ⁇ /., U.S. Patent No. 6,261,537; Porter et al, U.S. Patent No. 6,117,858).
  • the carrier is a suspension of perfluorocarbon-containing dextrose/albumin microbubbles known as PESDA (perfluorocarbon-exposed sonicated dextrose/albumin).
  • PESDA perfluorocarbon-exposed sonicated dextrose/albumin
  • Human serum albumin (HSA) is easily metabolized within the body and has been widely used as a contrast agent.
  • the composition may be prepared as described in co-owned U.S. Patents 5,849,727 and 6,117,858. Briefly, a dextrose/albumin solution is sonicated while being perfused with the perfluorocarbon gas.
  • the microbubbles are preferably formed in an N 2 -depleted, preferably N 2 -free, environment, typically by introducing an N 2 -depleted (in comparison to room air) or N 2- free gas into the interface between the sonicating horn and the solution. Microbubbles formed in this way are found to be significantly smaller and stabler than those formed in the presence of room air. (See e.g. Porter et al, U.S. Patent No. 6,245,747.)
  • the microbubbles are conjugated with a compound to be delivered, such as a PMO-transporter conjugate, simply by incubating the microbubble suspension, with agitation if necessary, with a liquid formulation of the compound.
  • a compound to be delivered such as a PMO-transporter conjugate
  • the incubation may be carried out at room temperature, or at moderately higher temperatures, as long as the stability of the drug or the microbubbles is not compromised. It is believed that compounds incubated with such suspensions non-covalently bind at the gas-fluid interface of the microbubbles, and that, upon administration, the cell membrane fluidizing feature of the insoluble (e.g. perfluorocarbon) gas enhances cell entry for the compound.
  • the oligomer comprises a sequence of subunits connected by intersubunit linkages, where the sequence of subunits supports a sequence of bases effective to hybridize to a complementary-sequence target polynucleotide, to form a target/antisense duplex; and, carried on at least six contiguous intersubunit linkages, a charged moiety as described above.
  • the oligomer is an uncharged oligomer.
  • uncharged antisense oligomers are shown in Figs. 19A-G.
  • a small number of charged linkages e.g. phosphorothioate or, more preferably, charged phosphoramidate, may also be incorporated into the oligomers, preferably fewer than one charged linkage per four uncharged linkages.
  • Preferred uncharged antisense oligomer types include alkyl phosphonate-, phosphotriester-, and phosphoramidate- or phosphorodiamidate-linked oligonucleotides.
  • B represents a purine or pyrimidine base-pairing moiety effective to bind ⁇ by base-specific hydrogen bonding, to a base in a polynucleotide, preferably selected from adenine, cytosine, guanine, thymine and uracil.
  • Figs. 19A-F depict deoxyribose rings, subunits may also comprise, for example, substituted ribose rings or mo ⁇ holino rings, as described above.
  • the oligomer comprises morpholino subunits, e.g. as shown in Fig. 1, linked by phosphorodiamidate linkages, as shown in Fig. 2B.
  • the charged moiety is preferably attached at the phosphorus atom of the linkage, via the side group X, which is typically amino.
  • Fig. 20 shows the preparation of a phosphorodiamidate-linked morpholino oligomer having a modified amino side chain.
  • PMOs are conveniently synthesized via 5'-activated morpholino subunits having a protected morpholino nitrogen, as shown, for example, in U.S. Patent No. 5,185,444.
  • Such subunits having dialkylamino side chains can be stored at low temperature for months prior to use (see e.g. Summerton and Weller, Antisense & Nucleic Acid Drug Dev. 7:187-195, 1997).
  • HeLa pLuc/705 is the HeLa S3 cell line stably transfected with a plasmid carrying the luciferase coding sequence interrupted by a mutated human ⁇ - globin intron 2 (Gene Tools, Philomath, OR).
  • Other cell lines were obtained from ATCC (Manassas, VA). All cell lines were cultured in RPMI 1640 supplemented with 2mM glutamine, 100 ⁇ g/ml streptomycin, 100 U/ml penicillin (DME/F12) and 10% of fetal bovine serum (FBS) (Hyclone, Ogden, UT). All assays were carried out with exponentially growing cells in culture media containing 10% fetal bovine serum (FBS) unless otherwise specified. Fluorescence microscopy
  • the membrane-bound conjugate was removed by trypsinization, as follows. Trypsin (100 ⁇ l, 10%, Hyclone, Logan, UT) was added to each 20 well and incubated for 6 minutes at 37°C, followed by addition of 300 ⁇ l of culture media.
  • the cells were spun down and washed with PBS, then lysed with 100 ⁇ l cell lysis buffer.
  • the fluorescence of the cell lysate was measured as described above.
  • HeLa pLuc/705 cells in a 48-well plate were treated with medium containing test substance. After incubation, cells were washed with PBS three times, and 100 ⁇ l of trypsin (see above) was added to each well, followed by incubation for 6 minutes at 37°C, then by addition of 300 ⁇ l of culture media. The cells were spun down and washed once
  • fLUC firefly luciferase
  • pCNDEN3'Cslucr containing DEN2 nucleotides 10606 to 10646
  • pCNDEN5'Cslucr containing DEN2 nucleotides 119 to 161.
  • PMOs targeting these regions are listed in Table 1 as SEQ ID NOS: 7 and 6, respectively.
  • MHV murine hepatitis virus
  • a fourth plasmid construct was made using a pUC-derived vector that placed a larger portion of the DEN2 sequence (GenBank accession number U87411, nucleotides 1 to 204),containing the 5' end of the DEN2 polyprotein coding sequence, immediately upstream and in frame with the fLUC gene.
  • a PMO that targets this region (DEN AUG) is listed as SEQ ED NO: 8 in Table 1.
  • the DEN AUG PMO targets the DEN2 polyprotein start codon and its target is highlighted in Figure 29 (nucleotides 87- 106).
  • a fifth plasmid construct was created with a 30 base pair region surrounding the ATG start codon of the human c-myc gene (5'- AGCCTCCCGCGACGATGCCCCTCAACGTTA-3', SEQ ED NO: 42, Genbank accession number V00568) subcloned into the Nhe I and Sal I sites of pCNlucr and named pCNmycluc. This placed the c-myc coding sequences in frame with the amino acid coding sequences of the fLUC gene (c-myc:fLUC). A PMO targeting this region of c-myc, designated AVI-4126, is listed as SEQ ED NO: 5.
  • All of the above-described plasmids include the T7 RNA polymerase promoter upstream of the viralfLUC sequences and allow RNA to be produced from these plasmids, after linearization with either Notl or SnaBl, using the T7 polymerase-based Megascript kit and protocol (Ambion).
  • a protected and activated carboxyfluorescein e.g. 6-carboxyfluorescein dipivalate N-hydroxysuccinimide ester, commercially available from Berry & Associates, Inc. (Dexter, MI)
  • NMP 0.05M
  • the solution was added to a PMO synthesis column (see "Morpholino synthesis", above) in sufficient volume to cover the resin.
  • the mixture was incubated at 45°C for 20 minutes, then the column was drained and a second similar portion of protected and activated carboxyfluorescein was added to the column and incubated at 45°C for 60 minutes.
  • the column was drained and washed with NMP, and the oligomer was cleaved from the resin using 1 ml of cleavage solution (0. IM dithiothreitol in NMP containing 10% triethylamine).
  • the resin was washed with 300 ⁇ l of cleavage solution three times, immediately followed by addition of 4 ml of concentrated ammonia hydroxide and 16 hours incubation at 45°C to remove base protecting groups.
  • the morpholino oligomer was precipitated by adding 8 volumes of acetone, the mixture was centrifuged, and the pellet was washed with 15 ml of CH 3 CN. The washed pellet was re- dissolved in 4 ml of H 2 O and lyophilized.
  • the product was analyzed by time-of-flight MALDI mass spectrometry (MALDI-TOF) and high pressure liquid chromatography (HPLC).
  • MALDI-TOF time-of-flight MALDI mass
  • Peptides were synthesized by Fmoc Solid Phase Peptide Synthesis, referred to herein as SPPS.
  • SPPS Fmoc Solid Phase Peptide Synthesis
  • a p-benzyloxybenzyl alcohol resin was used for synthesis of peptides with a C- terminal acid, while a Rink Amide MBHA resin was used for peptide amides. Both resins are available from Novabiochem (San Diego, CA).
  • a typical synthesis cycle began with N- terminal deprotection via 20% piperidine.
  • N- ⁇ -Fmoc-protected amino acids were coupled to the growing peptide chain by activation with 2-(lH-benzotriazole-l-yl)-l, 1,3,3- tetramethyluronium hexafluorophosphate (HBTU) in the presence of N,N- diisopropylethylamine (DEEA).
  • HBTU 2-(lH-benzotriazole-l-yl)-l, 1,3,3- tetramethyluronium hexafluorophosphate
  • DEEA N,N- diisopropylethylamine
  • Arginine side chains were protected with the 2,2,4,6,7- pentamethyldihydrobenzofuran-5-sulfonyl (Pbf) protecting group, cysteine with trityl, and lysine side chains with t-butoxycarbonyl (Boc).
  • Peptides containing various C-terminal hydrophobic linkages were prepared as follows. Peptides were prepared for direct condensation with an amine or hydroxy group of the PMO by including combinations of natural and/or non-natural amino acids at the C-terminal end of the peptide during SPPS. Specifically, the linkages were comprised of the amino acids glycine, beta-alanine, and/or 6-aminohexanoic acid, used in different combinations of one or two residues. Peptide synthesis was otherwise identical to the synthesis of other peptide acids.
  • Peptide sequences that contain amine side chains such as rTat and pTat (Table 1), were prepared using the l-(4,4-dimethyl-2,6-dioxocyclohex-l-ylidene)ethyl (Dde) amine side chain protecting group. Lysine Dde groups survived the resin cleavage and deprotection of other amino acid side chain protecting groups. The side chain amines remain masked by Dde through conjugation with the PMO and are subsequently deprotected by treatment with 2% hydrazine in DMF.
  • Dde l-(4,4-dimethyl-2,6-dioxocyclohex-l-ylidene)ethyl
  • a C-terminally reactive peptide-benzotriazolyl ester was prepared by dissolving the peptide-acid (15 ⁇ mol), HBTU (14.25 ⁇ mol), and HOBt (15 ⁇ mol) in 200 ⁇ l NMP and adding DIE A (22.5 ⁇ mol). Immediately after addition of DIE A, the peptide solution was added to 1 ml of a 12 mM solution of 5'-piperazine-functionalized, 3'-acetyl-PMO in DMSO. After 180 minutes at 30°C, the reaction was diluted with a four-fold excess of water.
  • the crude conjugate was purified first through a CM-Sepharose weak cation exchange column (Sigma, St. Louis, MO), to remove unconjugated PMO, and then through a reversed phase column (HLB column, Waters, Milford, MA).
  • the conjugate was lyophilized and analyzed by MALDI-TOF MS, SCX HPLC, and CE.
  • Example 3. 3'-Acetylation of PMO and 5' Attachment of Transport Peptide.
  • the linker reagent N- ( ⁇ -maleimidobutyryloxy)succinimide ester (GMBS) was dissolved in 50 ⁇ l of DMSO, and the solution was added to the oligomer (2-5 mM) in sodium phosphate buffer (50 mM, pH 7.2) at a 1 :2 PMO/GMBS molar ratio. The mixture was stirred at room temperature in the dark for 30 minutes, and the product was precipitated using a 30-fold excess of acetone, then redissolved in water. The PMO- GMBS adduct was lyophilized and analyzed by MALDI-TOF and HPLC.
  • the adduct was then dissolved in phosphate buffer (50mM, pH 6.5, 5 mM EDTA) containing 20% CH 3 CN, and the transport peptide was added, at a 2: 1 peptide to PMO molar ratio (based on a PMO concentration as determined by its absorbance at 260 nm).
  • the reaction was stirred at room temperature in the dark for 2 hours.
  • the conjugate was purified first through a CM- Sepharose (Sigma, St. Louis, MO) cationic exchange column, to remove unconjugated PMO, then through a reverse phase column (HLB column, Waters, Milford, MA).
  • the conjugate was lyophilized and analyzed by MALDI-TOF and capillary electrophoresis (CE).
  • the final product contained about 70% material corresponding to the full length PMO conjugated to the transport peptide, with the balance composed of shorter sequence conjugates, a small amount of unconjugated PMO, both full length and fragments, and a very small amount (about 2%) of unconjugated peptide.
  • concentration determination used for all experiments was based on the total absorbance at 260 nm, including all shorter PMO sequences in the sample.
  • a PMO having a free secondary amine (ring nitrogen of morpholine) at the 3 '-end was dissolved in lOOmM sodium phosphate buffer, pH 7.2, to make a 2-5 mM solution.
  • the linking reagent, GMBS was dissolved in 100 ⁇ l of DMSO and added to the PMO solution at a PMO/GMBS ratio of 1 :2. The mixture was stirred at room temperature in the dark for 30 min, then passed through a P2 (Biorad) gel filtration column to remove the excess GMBS and reaction by-products.
  • the GMBS-PMO adduct was lyophilized and re-dissolved in 50mM phosphate buffer, pH 6.5, to make a 2-5 mM solution.
  • a transport peptide represented by T-SH in Fig. 4B, was added to the GMBS-PMO solution at a molar ratio of 2: 1 peptide to PMO.
  • the thiol -SH is the side chain of a single cysteine residue.
  • the reaction mixture was stirred at room temperature for 2 hours or at 4°C overnight.
  • the conjugate was purified by passing through Excellulose gel filtration column (Pierce Chemical) to remove excess peptide, then through a cation exchange CM-Sepharose column (Sigma) to remove unconjugated PMO, and finally through an Amberchrom reverse phase column (Rohm and Haas) to remove salt.
  • the conjugate was lyophilized and characterized by MS and HPLC.
  • Example 3 The procedure of Example 3 or Example 4 is repeated, employing N-succinimidyl 3- (2-pyridyldithio) propionate (SPDP) or succinimidyloxycarbonyl ⁇ -methyl- ⁇ -(2- pyridyldithio) toluene (SMPT) as linking reagent (see Fig. 4C), in place of GMBS.
  • SPDP N-succinimidyl 3- (2-pyridyldithio) propionate
  • SMPT succinimidyloxycarbonyl ⁇ -methyl- ⁇ -(2- pyridyldithio) toluene
  • HeLa cells were stably transfected with plasmid pLuc/705, which has a luciferase gene interrupted by a human ⁇ -globin intron mutated at nucleotide 705, thus causing incorrect splicing (Kang et al, 1998; Kole et al, 2001; Yan et al, 2002). Because the mis-spliced transcripts do not produce functional reporter proteins, no reporter signals are observed unless wild-type splicing is induced with a splice-correcting oligomer.
  • An antisense oligomer targeting the 705 splice site (having SEQ ID NO: 1, also designated "PMO 705"), when delivered effectively, corrects splicing and allows luciferase expression.
  • This assay measures the ability of steric blocking oligomers to enter cells and nuclei, block incorrect splicing of pre-mRNA, and thus cause expression of a reporter gene. It avoids the confusion of cytotoxicity with activity that can affect down-regulation assays, as cells must be able to carry out RNA processing and translation to produce a signal. Because oligomers must enter cells and cell nuclei to produce a signal in the assay, it is very useful for measuring uptake and effectiveness of delivery moieties. In addition, because no or very little signal is present before splice correction, the assay has a favorable signal-to- noise ratios. These unambiguously positive readouts allow convenient quantitative comparisons between the effects of different transporters on oligomer delivery (Moulton et al, 2003, Astriab-Fisher et al, 2002).
  • the amount of functional luciferase produced was determined by mixing 30 ⁇ l of cell lysate and 50 ⁇ l of Luciferase Assay Reagent (LAR) (Promega, WI) and measuring the light production using a Fix 800 microplate fluorescence/luminescence reader (Bio-tek, Vermont). The relative light units were normalized to ⁇ g of protein determined by the bicinchoninic acid (BCA) method, following the manufacturer's procedure (Pierce, L).
  • BCA bicinchoninic acid
  • the activated monomer 2 is reacted with a 5'-O-support-bound subunit to give the support-bound dimer 3.
  • the dimer is detritylated and reacted in a similar manner with further activated subunits prepared in the manner described above.
  • peptide conjugated and unconjugated PMO were tested in a cell free translation system for their ability to sterically block translation of a downstream reporter gene.
  • fLUC firefly luciferase
  • FIG. 21-23 conjugation of R 9 F 2 (SEQ ID NO: 13) to PMOs increased effectiveness of the antisense PMOs by between 10-500 fold, based on the concentration required to achieve 50% inhibition of target expression.
  • Figures 21-23 represent the results of these analyses using three different regions of the Dengue type 2 virus fused to the fLUC gene, as described above under Materials and Methods.
  • the region of Dengue viral RNA genome used in the pDCLD construct is known to have a extensive secondary structure (Khromykh, Kondratieva et al. 2003), as shown in Figure 29.
  • FIG. 1 A plasmid construct with a 30 base pair region surrounding the ATG start codon of the human c-myc gene was placed in frame with the amino acid coding sequences of the fLUC gene (c-myc.fLUC).
  • Figure 28 shows the enhanced antisense effect that conjugation of the (RAhxR) 4 peptide conveys to the c-myc PMO in the in vitro RRL translation system.
  • Results were also obtained targeting a sequence of MHV that surrounds the start codon of the lab gene (Neuman, B.W. et al, J.Virol. (2004), in press).
  • R 9 F 2 conjugation enhanced the antisense effectiveness of the PMO compared to unconjugated PMO by as much as 500 fold.
  • Example 9 Transport Peptides that Contain Non-natural Amino Acids Show Enhanced Delivery into Cells. Enhanced Antisense Activity and Resistance to Enzymatic Proteolysis Cellular uptake and antisense activity was investigated, using the 705 splice correction assay described in Example 6, for several conjugates of the invention comprising PMOs conjugated to peptides containing dimers of cationic amino acids alternating with 6- aminohexonic acid (Ahx). The data are shown in Figure 24 for a variety of such conjugates employing Ahx-containing transport peptides (SEQ ID NOs: 33-35 and 37-41).
  • Figure 24 shows the level of luciferase production in HeLa pLuc/705 cells after 24 hours treatment with each of the following: the PMO (705-FL, SEQ ID NO: l) conjugated to R 9 F 2 (SEQ ID NO: 13), (RRAhx) 4 (SEQ ID NO:33), (RAhxR) 4 (SEQ ED NO:34), (AhxRR) 4 (SEQ ID NO:35), (RAhxR) 3 (SEQ ED NO:37), (RahxR) 2 R (SEQ ID NO:38), (RAhxR) 2 (SEQ ID NO:39), (RKAhx) 4 (SEQ ID NO:40), or (RHAhx) 4 (SEQ ID NO:41). It was observed that Ahx-containing transport peptides having at least eight arginine residues performed as well or better than R 9 F 2 in this assay.
  • the protease sensitivity of the transport peptides was also investigated, as follows. Each of the peptide-PMO conjugates R 9 F 2 -705-FL and (RAhxR) 4 -705-FL was mixed with Proteinase K in lOO ⁇ l of 50mM Tris 5mM CaCl 2 buffer. The sample was incubated at 37°C for 5 minutes or, in a separate analysis, 2 hours, then placed onto dry ice until analysis by MALDI-TOF mass spectroscopy. The results are shown in Figures 25 and 26, respectively. Fig. 25 shows that the transport peptide containing all natural amino acids, R 9 F 2 -C
  • Fig. 26 shows that the transport peptide containing Ahx, (RAhxR) 4 (MW peak at 8332), was resistant to proteinase K degradation.
  • Tissue culture results from a variety of experimental systems clearly demonstrate that the transport peptides described in the present invention enhance delivery to intracellular compartments including the cytoplasm and nucleus.
  • a comparative analysis of PMO and peptide conjugated PMO uptake in spleen and lymph node cells was performed in mice.
  • mice Nine month old female Y10A mice (FI of B10. A and A.B1; two mice per treatment) were injected intravenously (tail vein) with 0.5ml of PBS containing 150 ug of a 3'- fluoresceinated PMO (scrambled sequence DSscr, 5'-AGT CTC GAC TTG CTA CCT CA-3'-FL; SEQ ID NO: 10) or the same PMO conjugated to R 5 F 2 R4 (SEQ ID NO:20) through a cysteine linker at the 5' terminus (R 5 F 2 R4-C-DSscr-FL). After 24 hours the mice were sacrificed, the spleens and four lymph nodes from each mouse were taken, and single cell suspensions were prepared and analyzed unstained for fluorescence by flow cytometry. The cells were gated for lymphocytes by forward/side scatter.
  • Figure 27 shows that cells from both the spleens and lymph nodes had substantially higher uptake of the peptide conjugated PMO (R 5 F 2 R,-PMO-FL) as compared to unconjugated PMO (PMO-FL).
  • splenocytes were stained for different subpopulations of lymphocytes by specific cell surface markers (CD4 and CD8 for lymphocytes, CD19 for B-cells and CDl lb for monocytes/macrophages). Flow cytometric analysis of the stained lymphocytes for fluorescence of the fluorescein-labeled PMO was performed. All these subpopulations demonstrated enhanced uptake of the peptide conjugated PMO compared to unconjugated PMO, as shown in Figure 27.
  • mice were injected intravenously (tail vein) with 150 ⁇ g R 5 F 2 R4-C-DSscr-FL on days 0, 3, 5, and 7.
  • mice were sacrificed and single cell suspensions prepared from the spleens and four lymph nodes of each mouse. Unstained flow cytometric analysis of both cell preparations were performed as described above. A substantial percentage of both splenocytes (6.6% ⁇ 2.6) and lymphocytes (4.3% +0.7) were positive for R 5 F 2 R ⁇ -C- DSscr-FL uptake.

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Abstract

Compositions and methods for enhancing delivery of molecules, e.g. biological agents, into cells are described. The composition is a conjugate of the biological agent, preferably a nucleic acid analog having a substantially uncharged backbone, covalently linked to a peptide transporter moiety as described. Conjugation of the peptide transporter to a substantially uncharged nucleic acid analog, such as a morpholino oligomer, is also shown to enhance binding of the oligomer to its target sequence and enhance antisense activity.

Description

Compositions for Enhancing Transport of Molecules into Cells
Field of the Invention
The invention relates to compositions and methods for enhancing delivery of molecules, e.g. biological agents, into cells, and in particular to intracellular delivery and enhanced binding of substantially uncharged nucleic acid analogs, particularly phosphorodiamidate-linked morpholino oligomers.
References
Arora, V. and PL. Iversen (2000). "Antisense oligonucleotides targeted to the p53 gene modulate liver regeneration in vivo." DrugMetab Dispos 28(2): 131-8. Astriab-Fisher, A., D. Sergueev et al. (2002). "Conjugates of antisense oligonucleotides with the Tat and antennapedia cell-penetrating peptides:effects on cellular uptake, binding to target sequences, and biologic actions." Pharm Res 19(6):744-54.
Astriab-Fisher, A., D.S. Sergueev et al. (2000). "Antisense inhibition ofP-glycoprotein expression using peptide-oligonucleotide conjugates." Biochem Pharmacol 60(l):83-90. Devi, G.R. (2002). "Prostate canceπstatus of current treatments and emerging antisense-based therapies." Curr Opin Mol Ther 4(2): 138-48.
Devi, G.R., J.R. Oldenkamp et al. (2002). "Inhibition of human chorionic gonadotropin beta-subunit modulates the mitogenic effect of c-myc in human prostate cancer cells." Prostate 53(3):200-10.
Heasman, E, M. Kofron et al. (2000). "Beta-catenin signaling activity dissected in the early Xenopus embryo: a novel antisense approach." Dev Biol 222(1): 124-34. Hudziak, R.M., E. Barofsky et al. (1996). "Resistance of morpholino phosphorodiamidate oligomers to enzymatic degradation." Antisense Nucleic Acid Drug Dev 6(4):267-72.
Iversen, PL. (2001). Phosphoramidite Morpholino Oligomers. Antisense Drug Technology. S. T. Crooke. New York, Marcel Dekker, Inc. Kang, S. H., MJ. Cho et al. (1998). "Up-regulation of luciferase gene expression with antisense oligonucleotides: implications and applications in functional assay development." Biochemistry 37(18):6235-9.
Khromykh, A. A., N. Kondratieva et al. (2003). "Significance in replication of the terminal nucleotides of the flavivirus genome." J Virol 77(19): 10623-9.
Kipshidze, N., E. Keane et al. (2001). "Local delivery of c-myc neutrally charged antisense oligonucleotides with transport catheter inhibits myointimal hyperplasia and positively affects vascular remodeling in the rabbit balloon injury model." Catheter Cardiovasc Interv 54(2): 247-56. Kipshidze, N.N., H.S. Kim et al. (2002). "Intramural coronary delivery of advanced antisense oligonucleotides reduces neointimal formation in the porcine stent restenosis model. " J Am Coll Cardiol 39( 10) : 1686-91.
McCaffrey, A.P., L. Meuse et al. (2003). "A potent and specific morpholino antisense inhibitor of hepatitis C translation in mice." Hepatology 38(2).503-8. Moulton, H.M., M.C. Hase et al. (2003). "HIV Tat peptide enhances cellular delivery of antisense morpholino oligomers." Antisense Nucleic Acid Drug Dev 13(l):31-43.
Moulton, H.M., M.H. Nelson et al. (2004). "Cellular uptake of antisense morpholino oligomers conjugated to arginine-rich peptides." Bioconjug Chem 15(2):290-9.
Nasevicius, A. and S.C. Ekker (2000). "Effective targeted gene 'knockdown' in zebrafish." Nat Genet 26(2): 216-20.
Qin, G., M. Taylor et al. (2000). "In vivo evaluation of a morpholino antisense oligomer directed against tumor necrosis factor-alpha." Antisense Nucleic Acid Drug Dev 10(1): 1 1-6.
Richard, IP., K. Melikov et al. (2003). "Cell-penetrating peptides. A reevaluation of the mechanism of cellular uptake." J Biol Chem 278(l):585-90.
Ricker, J.L., J.E. Mata et al. (2002). "c-myc Antisense oligonucleotide treatment ameliorates murine ARPKD. " Kidney Int 61 Suppl 1 : 125-131.
Rothbard, J.B., E. Kreider et al. (2002). "Arginine-rich molecular transporters for drug delivery: role of backbone spacing in cellular uptake." J Med Chem 45(17):3612-8. Stein, D , E Foster et al. (1997) "A specificity comparison of four antisense types morpholino, 2'-O-methyl RNA, DNA, and phosphorothioate DNA " Antisense Nucleic
Figure imgf000004_0001
Stein, D A , D E Skilling et al. (2001) "Inhibition of vesivirus infections in mammalian tissue culture with antisense morpholino oligomers " Antisense Nucleic Acid Drug Dev 11(5) 317-25
Summerton, J and D Weller (1997) "Morpholino antisense oligomers design, preparation, and properties " Antisense Nucleic Acid Drug Dev 7(3) 187-95
Tisne, C , B P Roques et al. (2004) "The annealing mechanism of HIV- 1 reverse transcription primer onto the viral genome " J Biol Chem 279(5) 3588-3595
Wender, P A , D J Mitchell et al. (2000) "The design, synthesis, and evaluation of molecules that enable or enhance cellular uptake peptoid molecular transporters " Proc Natl Acad Sci USA 97(24) 13003-8
Yoo, H , P Sazani et al. (1999) "PAMAM dendrimers as delivery agents for antisense oligonucleotides " Pharm Res 16(12) 1799-804
Zuker, M (2003) "Mfold web server for nucleic acid folding and hybridization prediction " Nucleic Acids Res 31(13) 3406-15
Background of the Invention The practical utility of many drugs having potentially useful biological activity is often stymied by difficulty in delivering such drugs to their targets Compounds to be delivered into cells must generally be delivered from a largely aqueous extracellular environment and then penetrate a lipophilic cell membrane to gain entry to the cell Unless the substance is actively transported by a specific transport mechanism, many molecules, particularly large molecules, are either too lipophilic for practical solubilization or are too hydrophilic to penetrate the membrane
A segment of the HIV Tat protein consisting of amino acid residues 49-57 (Tat 49-57, having the sequence RKKRRQRRR) has been used to deliver biologically active peptides and proteins to cells (e.g. Barsoum et ai, 1994, PCT Pubn No WO 94/04686) Tat (49-60) has been used to enhance delivery of phosphorothioate oligonucleotides (Astriab- Fisher, Sergueev et al. 2000, Astriab-Fisher, Sergueev et al. 2002) Reverse Tat, or rTat(57-49) (RRRQRRKKR), has been reported to deliver fluorescein into cells with enhanced efficacy compared to Tat (49-57) (Wender, Mitchell et al. 2000, Rothbard, Kreider et al. 2002) Rothbard and Wender have also disclosed other arginine-rich transport polymers (PCT Pubn No WO 01/62297, U S Patent No 6,306,993, US Patent Appn Pubn No 2003/0032593)
Oligonucleotides are one class of potentially useful drug compounds whose delivery has often been an impediment to therapeutic use Phosphorodiamidate-linked morpholino oligomers (PMOs, see e.g. Summerton and Weller, 1997) have been found more promising in this regard than charged oligonucleotide analogs such as phosphorothioates The PMOs are water-soluble, uncharged or substantially uncharged antisense molecules that inhibit gene expression by preventing binding or progression of splicing or translational machinery components PMOs have also been to shown to inhibit or block viral replication (Stein, Skilling et al. 2001, McCaffrey, Meuse et al. 2003) They are highly resistant to enzymatic digestion (Hudziak, Barofsky et al. 1996) PMOs have demonstrated high antisense specificity and efficacy m vitro in cell-free and cell culture models (Stein, Foster et al. 1997 ', Summerton and Weller 1997), and in vivo in zebrafish, frog and sea urchin embryos (Heasman, Kofron et al. 2000, Nasevicius and Ekker 2000), as well as in adult animal models, such as rats, mice, rabbits, dogs, and pigs (see e.g. Arora and Iversen 2000, Qin, Taylor et al. 2000, Iversen 2001 , Kipshidze, Keane et al. 2001 , Devi 2002, Devi, Oldenkamp et al. 2002, Kipshidze, Kim et al. 2002, Ricker, Mata et al. 2002)
Antisense PMO oligomers have been shown to be taken up into cells and to be more consistently effective in vivo, with fewer nonspecific effects, than other widely used antisense oligonucleotides (see e.g. P Iversen, "Phosphoramidite Morpholino Oligomers", m Antisense Drug Technology, S T Crooke, ed , Marcel Dekker, Inc , New York, 2001) However, further enhancement in uptake and antisense efficacy is desirable in order to fully explore their potential
Summary of the Invention
In one aspect, the invention provides a method for enhancing the ability of an nucleic acid analog, having a substantially uncharged backbone and a targeting base sequence, to bind to a target sequence in a nucleic acid, the method comprising conjugating to the nucleic acid analog a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six, and preferably at least eight, X subunits, at least two Y subunits, and at most three Z subunits, where >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure RIN=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid via R1 or R2; (b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)n-NH-, where (i) n is 2 to 7 and each R is independently H or methyl, or (ii) n is 1 and R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms; and
(c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
Preferably, the above-described peptide, when conjugated to an antisense oligomer having said substantially uncharged backbone (i.e. the same type of backbone as the nucleic acid analog), is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein, relative to that observed with unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block a translation start codon for the encoded protein, or (ii) an increase in expression of an encoded protein, relative to that observed with unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced.
Assays suitable for measurement of these effects are described further below. In one embodiment, conjugation of the peptide provides this activity in a cell-free translation assay, as described herein. Preferably, activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten. In some embodiments, activity may be enhanced by factors of 50, 100 or more.
Alternatively or in addition, the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten. In some embodiments, uptake may be enhanced by factors of 50, 100 or more.
In the conjugates, the nucleic acid analog may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety, as described further below.
The optional Z subunits, when present, are preferably selected from alanine, glycine, methionine, serine, and threonine. The peptide may include zero, one, two, or three Z subunits.
Preferably, for each X subunit, the side chain moiety is independently selected from the group consisting of guanidyl (HN=C(NH2)NH-), amidinyl (HN=C(NH2)C<), 2-amino dihydropyrimidyl, 2-aminotetrahydropyrimidyl, 2-aminopyridinyl, and 2-amino pyrimidonyl. More preferably, for each X, the side chain moiety is guanidyl, such as in an arginine subunit.
Preferably, when Y is defined as a neutral amino acid subunit -C(O)-(CHR)n-NH-, where n is 2 to 7, the subunit is of the form -C(O)-(CH2)n-i(CHR)-NH-, where R is H or methyl, and is preferably H.
In other preferred embodiments, the at least two Y subunits include
(i) two neutral, hydrophobic α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
(ii) two neutral, hydrophobic amino acid subunits -C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H or methyl and is preferably H. In selected embodiments, the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit, which acts as a linker. Preferably, the two Y subunits are contiguous. In these embodiments, each Y preferably represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain, such as, for example, phenylalanine, tyrosine, tryptophan, leucine, isoleucine, or valine. In selected embodiments of the peptide, each Y is independently selected from phenylalanine and tyrosine. One such embodiment is a peptide having the formula Arg9Phe2. Such a peptide may be linked to the nucleic acid analog via a cysteine subunit attached to the terminal Phe.
In other embodiments, each Y is a neutral, hydrophobic amino acid subunit -CO-(CH2)„.CHR-NH-, where n is 2 to 7 and R is H. For example, when n is 5 and R is H, Y is a 6-aminohexanoic acid subunit, abbreviated herein as Ahx. In selected embodiments of this group, each X comprises a guanidyl side chain moiety, as in an arginine subunit. Preferred peptides of this type include those comprising arginine dimers alternating with single Y subunits, where Y is preferably Ahx. Examples include peptides having the formula (RYR) or the formula (RRY)4> where Y is preferably Ahx. In the latter case, the nucleic acid analog is preferably linked to a terminal Y subunit. The nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone, is preferably a morpholino oligomer or a peptide nucleic acid. Preferably, the oligomer backbone is fully uncharged. In preferred embodiments, the nucleic acid analog is a morpholino oligomer, comprising morpholino subunits linked by phosphorus-containing linkages, one to three atoms long, between the morpholino nitrogen of one subunit and an exocyclic carbon at the morpholino 3 -position of an adjacent subunit. The linkages are preferably two-atom uncharged phosphorodiamidate linkages, in accordance with the structure:
Figure imgf000008_0001
where Yι=O, Z=O, Pj is a purine or pyrimidine base-pairing moiety effective to bind, by base-specific hydrogen bonding, to a base in a polynucleotide, and X is alkyl, alkoxy, thioalkoxy, or alkyl amino.
Conjugation of a peptide to a nucleic acid analog as described above forms a peptide- oligomer conjugate which is more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus.
In another aspect, the invention provides a peptide-nucleic acid analog conjugate, comprising a nucleic acid analog having a substantially uncharged backbone and a targeting base sequence, and covalently linked to the nucleic acid analog, a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least eight X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where
(a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid subunit comprising a side chain of the structure
R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid subunit via R1 or R2;
(b) said at least two Y subunits include (i) two neutral α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
(ii) two neutral, hydrophobic amino acid subunits -C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H or methyl; and
(c) Z represents an amino acid subunit selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine. Preferably, the conjugate includes a peptide which, when conjugated to an antisense oligomer having the same type of substantially uncharged backbone as the nucleic acid analog, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein, relative to that observed with unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block a translation start codon for the encoded protein, or
(ii) an increase in expression of an encoded protein, relative to that observed with unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced. Assays suitable for measurement of these effects are described further below. In one embodiment, conjugation of the peptide provides this activity in a cell-free translation assay, as described herein. Preferably, activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten. In some embodiments, activity may be enhanced by factors of 50, 100 or more. Alternatively or in addition, the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten. In some embodiments, activity may be enhanced by factors of 50, 100 or more. In the conjugates of the invention, the nucleic acid analog is preferably conjugated to the peptide via a linker moiety selected from a Y subunit, a cysteine subunit, and an uncharged, non-amino acid linker moiety.
Preferably, the side chain moieties of the X subunits are independently selected from the group consisting of guanidyl (HN=C(NH2)NH-), amidinyl (HN=C(NH2)C<), 2- aminodihydropyrimidyl, 2-aminotetrahydropyrimidyl, 2-aminopyridinyl, and 2-amino pyrimidonyl. More preferably, each such side chain moiety is guanidyl; for example, each X can be an arginine subunit.
The optional Z subunits, when present, are preferably selected from alanine, glycine, methionine, serine, and threonine. The peptide may include zero, one, two, or three Z subunits, and preferably includes at most one Z subunit.
In selected embodiments, the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit. Preferably, the two Y subunits are contiguous.
In further preferred embodiments, each Y represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
In selected embodiments, each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine. This includes, for example, conjugates which consist of arginine subunits, phenylalanine subunits, a linker moiety, and the nucleic acid analog. One such conjugate includes a peptide having the formula Arg9Phe2. The linker moiety may be, for example, a cysteine subunit attached to the terminal Phe.
In other embodiments, each Y is a neutral, hydrophobic amino acid subunit -C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H. In one such embodiment, n is 5, such that Y is a 6-aminohexanoic acid subunit. In selected embodiments of this class, each X has a guanidyl side chain, e.g. as in arginine subunits. These include conjugates in which the peptide comprises arginine dimers alternating with single Y subunits. Examples of such peptides are the peptide having the formula (RYR)4 and the peptide having the formula (RRY)4. In the latter case, the nucleic acid analog is preferably linked to a terminal Y subunit.
The nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone, is preferably a morpholino oligomer, as described above, or a peptide nucleic acid.
The peptide-oligomer conjugates of the invention are more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system, including cell free translation systems; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus. Preferably, activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
Alternatively or in addition, the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
In another aspect, the invention provides a conjugate comprising a pharmacological agent covalently linked to a peptide, wherein the peptide consists of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six, and preferably at least eight, X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid via R1 or R2; (b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms; and (c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine. The peptide is effective to enhance the transport of the agent into a cell relative to the agent in unconjugated form. The agent may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety. The optional Z subunits, when present, are preferably selected from alanine, glycine, methionine, serine, and threonine. The peptide may include zero, one, two, or three Z subunits, and preferably includes at most one Z subunit.
In selected embodiments of X, the side chain moiety is independently selected from the group consisting of guanidyl (HN=C(NH2)NH-), amidinyl (HN=C(NH2)C<), 2-amino dihydropyrimidyl, 2-aminotetrahydropyrimidyl, 2-aminopyridinyl, and 2-amino pyrimidonyl.
Preferably, for each X, the side chain moiety is guanidyl; more preferably, each X is an arginine subunit.
In selected embodiments of Y, the at least two Y subunits include two neutral, hydrophobic α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety. Preferably, the peptide has exactly two Y subunits which are contiguous or are flanking a cysteine subunit, which acts as a linker moiety; more preferably, the Y subunits are contiguous. In further preferred embodiments, each Y represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine. In selected embodiments, each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine. This includes, for example, conjugates which consist of arginine subunits, phenylalanine subunits, a linker moiety, and the nucleic acid analog. One such conjugate includes a peptide having the formula Arg9Phe2. The linker moiety may be, for example, a cysteine subunit attached to the terminal Phe. In a related aspect, the invention provides a method for enhancing cell uptake of a pharmacological agent, the method comprising conjugating the agent to a transport peptide as described above; i.e. where the peptide consists of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six, and preferably at least eight, X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid via R1 or R2; (b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms; and
(c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine. The invention also provides a composition useful for intracellular delivery of an nucleic acid analog in vivo, comprising a peptide-nucleic acid analog conjugate, as described above, and a suspension of insoluble gas-containing microbubbles in an aqueous vehicle comprising at least one filmogenic compound selected from a protein, surfactant, lipid, polysaccharide, and combinations thereof. Preferably, the microbubbles are suspended in an aqueous vehicle comprising albumin, and the insoluble gas is selected from the group consisting of perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane, and perfluoropentane.
In another aspect, the invention provides a modified nucleic acid analog, comprising (i) a plurality of subunits connected by intersubunit linkages, and supporting a sequence of bases effective to hybridize to a complementary-sequence target polynucleotide, to form a target/antisense duplex; and
(ii) carried on at least six contiguous intersubunit linkages, a charged moiety of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain moiety is linked to said amino acid subunit via R1 or R2.
Preferably, the charged moiety is selected from the group consisting of guanidyl
(-N=C(NH2)NH-), amidinyl (-C(=NH)(NH2)), 2-amino hexahydropyrimidyl (=HN-H(NH2)NH-), 2-aminopyridinyl (-C(=N)(NH2)), and 2-aminopyrimidonyl
(-N-NH2)=N-). More preferably, the charged moiety is guanidyl. In one embodiment, the subunits are morpholino subunits, and the linkages are phosphorodiamidate linkages.
These and other objects and features of the invention will become more fully apparent when the following detailed description of the invention is read in conjunction with the accompanying drawings. Brief Description of the Drawings
Figs. 1A-1D show several preferred morpholino-type subunits having 5-atom (A), six-atom (B) and seven-atom (C-D) linking groups suitable for forming polymers.
Figs. 2A-D show the repeating subunit segment of exemplary morpholino oligonucleotides, constructed using subunits A-D, respectively, of Figure 1.
Figs. 3A-G show exemplary X side chain structures, for use in various embodiments of the transporters of the invention.
Figs. 4A-D show oligomer-transporter conjugates and methods of their preparation, where Fig. 4C shows preparation of an in vivo cleavable conjugate. Fig. 5 A shows adsorption of a fluorescein-labeled peptide-PMO conjugate (R9F2C-
705-FL) over time, as measured in HeLa pLuc705 cells treated with 1 μM of the conjugate.
Fig. 5B shows absorption with increasing concentration, measured at 37°C (D) and 17°C (*), in HeLa pLuc705 cells incubated with R9F2C-705-FL for 70 minutes.
Fig. 6 shows adsorption with increasing concentration in HeLa pLuc705 cells incubated with R9F2C-705-FL and with (D)-R9F2C-705-FL, without trypsin treatment (closed square and circle, respectively), and with trypsin treatment (open square and circle, respectively).
Fig. 7A shows internalization over time, as determined by flow cytometry in cells incubated with 1 μM fluorescein-labeled peptide-PMO conjugate (R9F2C-705-FL) and then treated with trypsin.
Fig. 7B shows internalization with increasing concentration, as determined by flow cytometry, in cells treated with R9F2C-705-FL, at 37°C (D) or 17°C (*) for 70 minutes, and then treated with trypsin.
Fig. 8 shows the level of luciferase production observed (expressed as RLU) in HeLa pLuc705 cells after 6 hrs incubation with 25 μM of each of the following: the PMO- transporter conjugates R9F2C-PMO; R9C-PMO; rTat(57-49)-C-PMO; and rTat(57-49)-PMO; a mixture of R9F2C and PMO; R9F2C alone; PMO alone; and PBS buffer. The PMO used was the 705 sequence (SEQ ED NO: 1).
Fig. 9 shows viability of HeLa cells after 24 hrs incubation with 25 μM of the compositions listed for Fig. 8.
Fig. 10 shows the level of luciferase production normalized to microgram of protein (RLU/μg protein) observed in HeLa Luc705 cells after 24 hrs incubation with conjugates of PMO(705) with RgF2, R9I2, RgF3, and R9F , respectively, where in each case the PMO was attached via a cysteine residue at the C-terminus (right side) of the peptide transporter as shown. Fig. 11 shows (A) the level of luciferase production (RLU/μg protein), as in Fig. 10, and (B) fluorescence in HeLa pLuc705 cells after 24 hrs incubation with conjugates of
PMO(705) with R9F2, ReF2, and R5F2 where in each case the PMO was attached via a cysteine residue at the C-terminus of the peptide transporter.
Fig. 12 shows the level of luciferase production (RLU/μg protein), as in Fig. 10, in HeLa pLuc705 cells after 24 hrs incubation with conjugates of PMO with RgF2, RsF^, and F2R9, respectively, where in each case the PMO was attached via a cysteine residue at the C-terminus of the peptide transporter.
Fig. 13 shows structures of bifunctional cross linkers that may be used to link transport polymers to antisense oligomers. Figs. 14 shows the level of luciferase production (RLU/μg protein), as in Fig. 10, in
HeLa pLuc705 cells after 24 hrs incubation with the conjugates R9F2-C-PMO and biotin-R9F2-C-PMO.
Fig. 15 shows the level of luciferase production (RLU/μg protein), as in Fig. 10, in
HeLa pLuc705 cells after 24 hrs incubation with various PMO(705)-transport peptide conjugates, as shown in Table 1 herein, at a concentration of 25 μM, where in each case the PMO is linked to the C (cysteine) residue.
Fig. 16 shows luciferase production (RLU/μg protein), in HeLa pLuc705 cells treated with conjugates of antisense PMO (705) with different-sequence transporter peptides, at a concentration of 1 μM (dark bars) or 5 μM (light bars) in serum-free medium for 6 hours, where in each case the PMO is linked to the C (cysteine) residue.
Fig. 17 shows luciferase production (RLU/μg protein) in HeLa pLuc705 cells treated with R9F2-C-PMO-705 (closed square) and the following control PMOs containing either two or four mismatches, scrambled or irrelevant sequences: R9F2-C-7052JVIM (closed circle), R9F2-C-7054MM (D), R9F2-C-705SCR (V) and R9F2-C-cmyc (*). Fig. 18 shows luciferase production (RLU/μg protein) in HeLa pLuc705 cells treated with R9F2C-PMO-705, measured at several times points. Figs. 19A-G show examples of other uncharged antisense oligomer types which may be modified to contain the transport peptides as described herein.
Fig. 20 shows a method of preparing a PMO having a modified intersubunit side chain containing cationic charge moieties. Figs. 21-23 represent the results of inhibition of cell-free translation by peptide PMO conjugates directed to viral sequences placed immediately upstream of the firefly luciferase reporter gene. Fig. 23 represents results obtained with the pDCLD reporter gene construct.
Fig. 24 shows the level of luciferase production observed (RLU per microgram of protein) in HeLa pLuc/705 cells after 24 hours treatment with 10 μM of each of the following: the PMO (705-FL) conjugated to R9F2, (RRAhx)4, (RAhxR)4, (AhxRR)4, (RAhxR)3, (RahxR)2R, (RAhxR)2, (RKAhx)4, or (RHAhx)4.
Figs. 25 A-B and 26A-B show that a transport peptide containing 6-aminohexanoic acid (Ahx), (RAhxR)4, is resistant to proteinase K degradation and that a transport peptide containing all natural amino acids, R9F2, was not resistant to proteinase K degradation.
Fig. 27 shows the in vivo bioavailability and relative intracellular delivery of unconjugated and peptide conjugated, fluorescein-labeled PMO in mouse lymph node and spleen cells and subpopulations of cells from those tissues.
Fig. 28 shows the results of inhibition of cell-free translation by peptide-PMO conjugates targeted to a region of the human c-myc gene that surrounds the translational start codon fused to the firefly luciferase reporter gene.
Fig. 29 shows the computer-predicted RNA secondary structure that surrounds the Dengue virus translational start codon and the target of the DEN AUG antisense PMO (highlighted, nucleotides 87-106). The AUG start codon is at nucleotides 97-99.
Detailed Description of the Invention
I. Definitions
"Alkyl" refers to a fully saturated monovalent radical containing carbon and hydrogen, which may be branched, linear, or cyclic (cycloalkyl). Examples of alkyl groups are methyl, ethyl, n-butyl, t-butyl, n-heptyl, isopropyl, cyclopropyl, cyclopentyl, ethylcyclopentyl, and cyclohexyl. Generally preferred are alkyl groups having one to six carbon atoms, referred to as "lower alkyl", and exemplified by methyl, ethyl, n-butyl, i-butyl, t-butyl, isoamyl, n-pentyl, and isopentyl. In one embodiment, lower alkyl refers to Q to C4 alkyl.
"Alkenyl" refers to an unsaturated monovalent radical containing carbon and hydrogen, which may be branched, linear, or cyclic. The alkenyl group may be monounsaturated or polyunsaturated. Generally preferred are alkenyl groups having one to six carbon atoms, referred to as "lower alkenyl". In one embodiment, lower alkenyl refers to C to C4 alkenyl.
"Aryl" refers to a substituted or unsubstituted monovalent aromatic radical, generally having a single ring (e.g., benzene) or two condensed rings (e.g., naphthyl). Generally preferred are aryl groups having a single ring. Preferably, the rings are hydrocarbon rings. "Aralkyl" refers to an alkyl, preferably lower (C1-C4 , more preferably Cι-C2) alkyl, substituent which is further substituted with an aryl group; examples are benzyl (-CH2C6H5) and phenethyl (-CH2CH2C6H5).
The term "substituted", with respect to an alkyl, alkenyl, alkynyl, aryl, aralkyl, or alkaryl group in a neutral side chain, refers to replacement of a hydrogen atom with a lower alkyl group or a neutral heteroatom-containing substituent, such as, for example, halogen, e.g. fluorine, chlorine, or bromine; hydroxy, alkoxy, thiol, alkylthio, oxo (keto), nitro, cyano, or various esters such as carboxylic, sulfonic, or phosphonic. Preferably, such substituents are selected from hydroxy, lower alkoxy, thiol, lower alkylthio, and oxo (keto).
A nucleic acid analog having a "substantially uncharged" backbone (also referred to as a "substantially uncharged nucleic acid analog") is one having at most one charged (at physiological pH) intersubunit linkage for every four uncharged (at physiological pH) linkages, preferably at most one for every eight, and more preferably at most one for every sixteen uncharged linkages. In a preferred embodiment, the nucleic acid analogs described herein are fully uncharged. In general, terms such as "charged", "uncharged", and "neutral" used herein refer to the state of the group so described at physiological pH, i.e. about 7.4.
The "backbone" of such an analog refers to the structure supporting the base-pairing moieties; i.e., for a morpholino oligomer, as described below, the "backbone" includes morpholino ring structures connected by phosphorus-containing linkages. A "target sequence" refers to a complementary or near-complementary sequence to which an antisense oligomer is targeted, by virtue of its base sequence, and is able to stably bind under physiological conditions of temperature and pH.
The term "antisense activity", in reference to steric blocking oligomers, refers to the ability of an antisense oligomer to bind to its target sequence and inhibit the function of that target sequence, or closely adjacent sequences, e.g., blocking translation of an mRNA, blocking cis-acting elements in viral RNA replication, or blocking the accurate splicing of pre-RNA.
I. Compound-Transporter Conjugates A. Peptide Conjugates
In one aspect, the invention provides a peptide-nucleic acid analog conjugate, comprising a nucleic acid analog having a substantially uncharged backbone and a targeting base sequence, and covalently linked to the nucleic acid analog, a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least eight X subunits, at least two Y subunits, and at most three Z subunits, where >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid subunit comprising a side chain of the structure R^COM^R2 (see Fig. 3 A), where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid subunit via R1 or R2; (b) said at least two Y subunits include
(i) two neutral α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or (ii) two neutral, hydrophobic amino acid subunits -C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H or methyl; and
(c) Z represents an amino acid subunit selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine. Z may also include amino acids having side chains which are one- or two-carbon homologs of naturally occurring side chains, excluding side chains which are negatively charged at physiological pH (e.g. carboxylate side chains). Preferably, the side chains are neutral. More preferred side chains are side chains of naturally occurring amino acids. The optional Z subunits are preferably selected from alanine, glycine, methionine, serine, and threonine. The peptide may include zero, one, two, or three Z subunits, and preferably includes at most two Z subunits.
Preferably, the conjugate includes a peptide which, when conjugated to an antisense oligomer having the same type of substantially uncharged backbone as the nucleic acid analog, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein, relative to that provided by the unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block a translation start codon for the encoded protein, or
(ii) an increase in expression of an encoded protein, relative to that provided by the unconjugated oligomer, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced. Assays suitable for measurement of these effects are described further below. In one embodiment, conjugation of the peptide provides this activity in a cell-free translation assay, as described herein. Preferably, activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
Alternatively or in addition, the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
In the conjugates of the invention, the nucleic acid analog is preferably conjugated to the peptide via a linker moiety selected from a Y subunit, a cysteine subunit, and an uncharged, non-amino acid linker moiety.
Preferably, the side chain moieties of the X subunits are independently selected from the group consisting of guanidyl (HN=C(NH2)NH-), amidinyl (HN=C(NH2)C<), 2- aminodihydropyrimidyl, 2-aminotetrahydropyrimidyl, 2-aminopyridinyl, and 2-amino pyrimidonyl (Figs. 3B-G, respectively, with possible linkage sites indicated). Note that, in structures 3D, 3E, and 3G, linking of the side chain to the amino acid subunit could take place via any of the ring -NH- groups as well as via any of the carbon atoms indicated. In one embodiment, the side chain moiety is guanidyl, as in the amino acid subunit arginine (Arg).
In selected embodiments, the peptide has exactly two Y subunits of type (i), which are contiguous or are flanking a cysteine subunit. Preferably, the two Y subunits are contiguous. Preferred side chains for Y subunits of type (i) include side chains of naturally occurring amino acids and one- or two-carbon homologs thereof, excluding side chains which are charged at physiological pH. More preferred side chains are side chains of naturally occurring amino acids. In further preferred embodiments, the side chain is an aryl or aralkyl side chain; for example, each Y may be independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
In selected embodiments, each Y is independently selected from phenylalanine and tyrosine; in further embodiments, each Y is phenylalanine. This includes, for example, conjugates which consist of arginine subunits, phenylalanine subunits, a linker moiety, and the nucleic acid analog. One such conjugate includes a peptide having the formula Arg9Phe2. The linker moiety may be, for example, a cysteine subunit attached to the terminal Phe. In other embodiments, each Y is a neutral, hydrophobic amino acid subunit
-C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H. In one such embodiment, n is 5, such that Y is a 6-aminohexanoic acid subunit (Ahx). In selected embodiments of this class, each X has a guanidyl side chain, e.g. as in arginine subunits. These include conjugates in which the peptide comprises arginine dimers alternating with single Y subunits, where Y is preferably Ahx. Examples of such peptides are the peptide having the formula (RYR)4 and the peptide having the formula (RRY) where Y is preferably Ahx. In the latter case, the nucleic acid analog is preferably linked to a terminal Y subunit.
The nucleic acid analog to which the peptide is conjugated, having a substantially uncharged backbone, is preferably a morpholino oligomer, as described herein, or a peptide nucleic acid. The peptide-oligomer conjugates of the invention are more effective than the unconjugated oligomer in various functions, including: inhibiting expression of targeted mRNA in a protein expression system, including cell free translation systems; inhibiting splicing of targeted pre-mRNA; and inhibiting replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus. Preferably, activity is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
Alternatively or in addition, the peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
Also included are conjugates of other pharmacological agents, not limited to nucleic acid analogs, linked to a peptide transporter where the Y subunits are of type (i) above. Specifically, the peptide consists of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six, and preferably at least eight, X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits. The X and Z subunits are as defined above, and each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every two, preferably every four, and more preferably every six carbon atoms. The agent may be conjugated to the peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
The compound to be delivered is preferably a biologically active agent, e.g. a therapeutic or diagnostic agent, although it may be a compound employed for detection, such as a fluorescent compound. Biologically active agents include drug substances selected from biomolecules, e.g. peptides, proteins, saccharides, or nucleic acids, particularly antisense oligonucleotides, or "small molecule" organic or inorganic compounds. A "small molecule" compound may be defined broadly as an organic, inorganic, or organometallic compound which is not a biomolecule as described above. Typically, such compounds have molecular weights of less than 1000, or, in one embodiment, less than 500.
In one embodiment, the agent to be delivered does not include single amino acids, dipeptides, or tripeptides. In another embodiment, it does not include short oligopeptides; that is, oligopeptides having fewer than six amino acid subunits. In a further embodiment, it does not include longer oligopeptides; that is, oligopeptides having between seven and 20 amino acid subunits. In a still further embodiment, it does not include polypeptides, having greater than 20 amino acid subunits, or proteins.
The transport peptide is effective to enhance the transport of the agent into a cell relative to the agent in unconjugated form, and relative to the agent conjugated to a corresponding peptide lacking the Y subunits. Preferably, transport is enhanced by a factor of at least two, more preferably by a factor of at least five, and most preferably by a factor of at least ten.
B. Nucleic Acid Analogs
Nucleic acid analogs included in the conjugates of the invention are substantially uncharged synthetic oligomers capable of base-specific binding to a target sequence of a polynucleotide, e.g. antisense oligonucleotide analogs. Such analogs include, for example, methylphosphonates, peptide nucleic acids, substantially uncharged N3'- P5' phosphoramidates, and morpholino oligomers.
A nucleic acid analog having a "substantially uncharged" backbone (also referred to as a "substantially uncharged nucleic acid analog") is one having at most one charged (at physiological pH) intersubunit linkage for every four uncharged (at physiological pH) linkages, preferably at most one for every eight, and more preferably at most one for every sixteen uncharged linkages. In a preferred embodiment, the nucleic acid analogs described herein are fully uncharged. The base sequence of the nucleic acid analog, provided by base pairing groups supported by the analog backbone, can be any sequence, where the supported base pairing groups include standard or modified A, T, C, G and U bases or the non-standard inosine (I) and 7-deaza-G bases.
A preferred nucleic acid analog is a morpholino oligomer, i.e. an oligonucleotide analog composed of morpholino subunit structures of the form shown in Fig. 1, where (i) the structures are linked together by phosphorus-containing linkages, one to three atoms long, preferably two atoms long, and preferably uncharged, joining the morpholino nitrogen of one subunit to the 5' exocyclic carbon of an adjacent subunit, and (ii) Pj and Pj are purine or pyrimidine base-pairing moieties effective to bind, by base-specific hydrogen bonding, to a base in a polynucleotide. The purine or pyrimidine base-pairing moiety is typically adenine, cytosine, guanine, uracil or thymine. The synthesis, structures, and binding characteristics of morpholino oligomers are detailed in U.S. Patent Nos. 5,698,685, 5,217,866, 5, 142,047, 5,034,506, 5, 166,315, 5,521,063, and 5,506,337, all of which are incorporated herein by reference.
The subunit shown Fig. IB, having a two-atom linkage, is used for 6-atom repeating- unit backbones, as shown in Fig. 2B. In these structures, the atom Yi linking the 5' morpholino carbon to the phosphorus group may be sulfur, nitrogen, carbon or, preferably, oxygen. The X moiety pendant from the phosphorus is any stable group which does not interfere with base-specific hydrogen bonding. Preferred groups include alkyl, alkoxy, thioalkoxy, and alkyl amino, including cyclic amines, all of which can be variously substituted, as long as base-specific bonding is not disrupted. Alkyl, alkoxy and thioalkoxy preferably include 1-6 carbon atoms. Alkyl amino preferably refers to lower alkyl (Ci to Cβ) substitution, and the cyclic amines are preferably 5- to 7-membered nitrogen heterocycles optionally containing 1 -2 additional heteroatoms selected from oxygen, nitrogen, and sulfur. Z is sulfur or oxygen, and is preferably oxygen. A preferred morpholino oligomer is a phosphorodiamidate-linked morpholino oligomer, referred to herein as a PMO. Such oligomers are composed of morpholino subunit structures of the form shown in Fig. 2B, where the structures are linked together by phosphorodiamidate linkages, where X=NH2, NHR, or NR2 (where R is lower alkyl, preferably methyl), Y=O, and Z=O, joining the morpholino nitrogen of one subunit to the 5' exocyclic carbon of an adjacent subunit, Pj and Pj are purine or pyrimidine base-pairing moieties effective to bind, by base-specific hydrogen bonding, to a base in a polynucleotide. Also preferred are structures having an alternate phosphorodiamidate linkage, where, in Fig. 2B, X = lower alkoxy, such as methoxy or ethoxy, Y=NH or NR, where R is lower alkyl, and Z=O.
Desirable chemical properties of the morpholino-based oligomers include the ability to selectively hybridize with a complementary-base target nucleic acid, including target RNA, with high Tm, even with oligomers as short as 8-14 bases, the ability to be actively transported into mammalian cells, and the ability of an oligomeπRNA heteroduplex to resist RNAse degradation.
A "substantially uncharged" morpholino oligomer includes at most one charged intersubunit linkage for every four, preferably for every eight, and more preferably for every sixteen, uncharged intersubunit linkages. Any charged linkages are preferably charged phosphoramidate (or thiophosphoramidate) linkages, e.g. a linkage as shown in Fig. 2B where X is O" or S". Preferably, the morpholino oligomers are fully uncharged.
In a preferred embodiment, the morpholino oligomer is about 8-40 subunits in length. More typically, the oligomer is about 8-20, about 8-16, about 10-30, or about 12-25 subunits in length. For some applications, such as antibacterial, short oligomers, e.g. from about 8-12 subunits in length, can be especially advantageous, particularly when attached to a peptide transporter as disclosed herein. C. Linkers The transport peptide can be linked to the agent to be delivered by a variety of methods available to one of skill in the art. Exemplary methods are provided in Examples 2-5 below and illustrated in Figs. 4A-D. In one embodiment, the transport peptide contains a single cysteine residue whose side chain thiol is used for linking, such as shown in Figs. 4B and 4C, where the cysteine is a terminal cysteine. The linker may also be provided by a hydrophobic subunit such as those defined as Y, e.g. a β-alanine or longer non-α amino acid subunit, as shown, for example, in Fig. 4D.
As discussed further below, the linkage point can be at various locations along the transporter. In selected embodiments, it is at a terminus of the transporter. Typically, it is adjacent (or even between) the hydrophobic residues of the transporter. Multiple transporters can be attached to a single compound if desired; alternatively, multiple compounds can be conjugated to a single transporter. When the compound is a PMO, the transporter can be attached at the 5' end of the PMO via an amine capping moiety, as described in Examples 2-3 and illustrated in Figs. 4A and 4D. Alternatively, the transporter may be attached at the 3' end, e.g. via a morpholino ring nitrogen, as described in Example 4 and shown in Fig. 4B, or via the side chain of an intersubunit linkage, either at a terminus or an internal linkage.
The linker between the transport peptide and the PMO may also consist of natural or non-natural amino acids (e.g., 6-aminohexanoic acid or β-alanine) added to the peptide at the C-terminal and as described in Example 2. The linker may also comprise a direct bond between the carboxy terminus of a transporter peptide and an amine or hydroxy group of the PMO, formed by condensation promoted by e.g. carbodiimide.
In general, the linker may comprise any nonreactive moiety which does not interfere with transport or function of the conjugate. The linker preferably includes a chain of up to about sixteen atoms, including lengths of up to 12 or up to 8 atoms, comprising linkages selected from alkyl, ether (e.g. PEG linkages), thioether, ester, amide, amino, carbamate, or combinations thereof. More preferably, the linkages are selected from alkyl, ether, and amide, when linkages which are stable (non-cleavable) in vivo are desired.
Linkers can be selected from those which are non-cleavable under normal conditions of use, e.g., containing an ether, thioether, amide, or carbamate bond. In other embodiments, it may be desirable to include a linkage between the transporter moiety and compound which is cleavable in vivo. Bonds which are cleavable in vivo are known in the art and include, for example, carboxylic acid esters, which are hydrolyzed enzymatically, and disulfides, which are cleaved in the presence of glutathione. It may also be feasible to cleave a photolytically cleavable linkage, such as an ort/rø-nitrophenyl ether, in vivo by application of radiation of the appropriate wavelength. For example, the preparation of a conjugate having a disulfide linker, using the reagent
N-succinimidyl 3 -(2-pyridyldithio) propionate (SPDP) or succinimidyloxycarbonyl α-methyl-α-(2-pyridyldithio) toluene (SMPT), is described in Example 5 and illustrated in Fig. 4C. Exemplary heterobifunctional linking agents which further contain a cleavable disulfide group include N-hydroxysuccinimidyl 3-[(4-azidophenyl)dithio]propionate and others described in Vanin, E.F. and Ji, T.H., Biochemistry 20:6754-6760 (1981).' D Exemplary Peptides and Conjugates
A Table of sequences of exemplary transport peptides and PMOs discussed in the following sections is provided below In general, the peptides include an N-terminal amino group and C-terminal amide (e.g., NH2-CYGRKKRRQRRR-CONH2) or free carboxyl group (e.g. , NH2.C YGRKKRRQRRR-COOH), or they include an N-terminal acetamide and C-terminal acid (e.g., Ac-NH(RAhxR)4AhxβAla-OH) The "Y" residues of peptides of the invention designated by SEQ ED NOs 13-32 are indicated in boldface, and internal cysteine residues used for linkage to the PMO are shown in italics (When no cysteine linker is shown, the peptide is typically linked via its C-terminus, i.e. at the right side as shown )
Exemplary peptides containing 6-aminohexanoic acid (Ahx) subunits are shown in Table 1 as SEQ ID NOs 33-41 The structure of the (RAhxR)4 transport peptide (SEQ ID NO 34) conjugated to a PMO via an Ahx-βAla linker is shown in Figure 4D
Table 1.
Figure imgf000028_0001
II. Biological Activity of Transporter-PMO Conjugates
The peptide transporters described herein facilitate the delivery of substantially uncharged oligomers into living eukaryotic cells, as well as significantly enhancing antisense activity, as demonstrated below for PMOs In one embodiment, the oligomer is a substantially uncharged morpholino oligomer as described above
Cellular delivery can involve both cytoplasmic and nuclear compartments of the cell Accordingly, in selected embodiments, the antisense oligomer includes a base sequence effective to hybridize to a target sequence which includes a splice site in a selected preprocessed mRNA (pre-mRNA) The antisense oligomer may also include a base sequence effective to hybridize to a target sequence which includes a translation start site in a selected mRNA The antisense oligomer may also include a base specific sequence effective to hybridize to a target sequence required for viral replication In another aspect, the antisense oligomer may be an antibacterial agent, e.g. by targeting ribosomal RNA or other bacterial nucleic acids, as described, for example, in co-owned PCT Pubn Nos WO 01/49775 and WO 01/42457 (US Pubn No 2002/0082226), which are incorporated herein by reference
As demonstrated herein, the transport peptides as described above greatly enhance cell entry of attached compounds, relative to uptake of the compound in the absence of the attached peptide transport moiety, and relative to uptake by an attached transport moiety lacking the Y subunits Such enhanced uptake is preferably evidenced by at least a one-fold increase, and preferably a more than two-fold increase, in the uptake of the compound into mammalian cells, relative to uptake of the agent by an attached transport moiety lacking the Y subunits Uptake is preferably enhanced at least twenty fold, and more preferably at least forty fold, relative to the unconjugated compound
Uptake is preferably measured in HeLa cells or in mononuclear blood cells, particularly lymph or spleen derived cells, such as lymphocytes or fibroblasts, by processes such as described in Materials and Methods, below, for HeLa cells, under the headings "Cell Culture" through "Flow Cytometry" See also Example 6, Example 9, Section A below for evaluation of transport only, and Section B below for evaluation of transport and antisense activity
A further benefit of the transport moiety is the enhancement of binding of an attached nucleic acid analog to its target sequence The transport moieties of the invention are shown herein to lower the concentration of an uncharged antisense oligomer effective to achieve antisense activity, as measured in both tissue culture and cell-free systems Tissue culture experiments provide indications of enhanced antisense activity, due to enhanced intracellular delivery, enhanced antisense activity, e.g. binding of the antisense oligomer to its target sequence, or a combination of these phenomena.
Cell-free translation systems provide a means to assess, independently of transport, the enhancing effect of the conjugated peptide on the antisense oligomer' s ability to bind to its target and, through steric blocking, inhibit translation of downstream sequences (or inhibit aberrant splicing, as in the assay of Example 6). Cell-free translation assays designed to test the antisense effect of R9F2-PMO and (RAhxR)4-PMO conjugates demonstrate between 10 fold and 500 fold improvement in antisense activity compared to the unconjugated PMO (see, e.g., Example 8 and Figures 21-23 and 28). The term "enhancing the translation inhibiting ability" or "enhanced translation inhibiting ability" provided by the conjugated peptide, as used herein, preferably refer to antisense (translation inhibiting) activity as measured in such a cell free system, such as described in Materials and Methods, below, under the heading "Cell-free translations assays". See also Example 9 and Section C below.
A. Transporter-mediated delivery of morpholino oligomers into cells The cellular uptake of three test substances, including (1) unconjugated PMO (SEQ ID NO: 1, also designated herein as "705" or "PMO 705"), (2) a mixture of unconjugated PMO and the transport peptide R9F2 (SEQ D NO: 13)-C, and (3) a covalent conjugate of the PMO and the transport peptide (R9F2-C-705), were determined by fluorescent microscopy in four cell lines: HeLa pLuc705 derived from HeLa S3, HeLa, NIH3T3, and Jurkat. HeLa pLuc/705 (Kang, Cho et al. 1998) is a HeLa S3 cell line stably transfected with a plasmid carrying the luciferase coding sequence interrupted by a mutated human β- globin intron 2 (Gene Tools, Philomath, OR). Other cell lines were obtained from ATCC (Manassas, VA). The PMOs were 3 '-labeled with fluorescein as described in Example 1. To avoid artifacts, all fluorescent images were taken from live cells, and no fixative agent or mounting media were used.
In all four cell lines, the fluorescent images of cells treated with 705-FL (SEQ ID NO.2) alone, or with the mixture of unconjugated 705-FL PMO and R9F2-C (SEQ ID NO: 13), were essentially devoid of fluorescence. In cells treated with R9F2-C-PMO conjugate, fluorescence was observed in 100% of the cells, although patterns varied among the different cell lines as follows. The NEH3T3 cells had very bright and diffused cytosolic and nuclear fluorescence with fewer punctate spots than other cell lines. The HeLa cells had mostly diffused fluorescence with more distinct punctate spots than NIH3T3. The HeLa S3 cells appeared to have less intense cytosolic diffuse fluorescence but with a very bright fluorescent spot localized near or in the nucleus. The Jurkat cells had the lowest level of fluorescence among these cell lines.
The association of the conjugate with cells is a fairly rapid process. As shown in Fig. 5 A, fluorescence of cells incubated with R9F2C-PMO increased within minutes and reached maximum intensity between 30-45 minutes over a 900 minute study period. The fluorescence of cells incubated at 37°C was similar to those incubated at 17°C over a concentration range of 0.1 to 5 μM (Fig. 5B). The adsorption appeared to be saturable, with an increase in fluorescence observed between 0.1-1 μM, but not between 1-5 μM.
As reported previously (Moulton, Hase et al. 2003), the majority of Tat peptide that becomes associated with cell membranes is not internalized. Because membrane-bound conjugate may artificially enhance the appearance of cellular fluorescence, trypsin treatment was used in the present case to reduce or eliminate the contribution from membrane-bound conjugate (Moulton, Hase et al. 2003; Richard, Melikov et al. 2003).
Thus, HeLa or NIH3T3 cells were incubated with conjugate, then trypsinized, as described below in Materials and Methods, washed, and replated. The trypsinized cells had much less fluorescence than non-trypsinized cells (Fig. 6), though patterns of fluorescence were similar.
As also shown in Fig. 6, both L-transporter and D-transporter conjugates gave identical association and internalization profiles; therefore, the decrease in fluorescence upon trypsinization cannot be attributed solely to trypsin digestion of R9F2C peptide. This suggests that the conjugate associates with membrane protein(s), which are digested by trypsin.
Having shown that trypsin can effectively remove most membrane-bound conjugate, factors affecting internalization of the conjugate could be studied in trypsinized cells by flow cytometry. As shown in Fig. 7A, gradual increases in fluorescence, due to conjugate internalization, are observed up to 700 minutes from incubation. Internalization is also seen to be temperature- and concentration-dependent, as shown in Fig. 7B. The profile shown in Fig. 7B is similar to that shown by the endocytosis marker FM4-64 (a fluorescent, lipophilic dye which labels the plasma membrane and is then endocytosed in a time-, temperature-, and energy-dependent manner). Internalization of conjugate was almost completely inhibited in cells pre-incubated with the metabolic inhibitor, NaN3, indicating that internalization of the peptide-PMO conjugate is an energy dependent process.
B. Antisense Activity in Cell Culture
Various oligomer-transporter moiety conjugates in accordance with the invention were tested for antisense activity in vitro (Example 6). The data described below was obtained by targeting a β-globin splice correction sequence fused to luciferase. Specifically, the assay uses HeLa cells stably transfected with plasmid pLuc/705, which has a luciferase gene interrupted by a human β-globin intron mutated at nucleotide 705, thus causing incorrect splicing. An antisense oligonucleotide targeting the 705 splice site, when delivered effectively, corrects splicing and allows luciferase expression. For further description of the plasmid and assay, see e.g. Kang, Cho et al. 1998; Yoo, Sazani et al. 1999. Because the cell nucleus is the site of pre-mRNA splicing, these data demonstrate delivery of the oligomer to the cell nucleus.
A conjugate of an 18-mer antisense PMO (SEQ ID NO: 1) with the oligopeptide rTat(57-49) (SEQ ID NO: 12) was previously shown to inhibit aberrant splicing in this assay (Moulton, Hase et al. 2003). Comparative assays were carried out using rTat (57- 49) conjugates and conjugates containing transporter molecules of the invention, as shown in Fig. 8.
As shown in the Figure, a conjugate consisting of the antisense PMO linked, via a cysteine residue, to a peptide having the sequence Arg9Phe2 (R9F2, SEQ ID NO: 13) was much more effective in suppressing aberrant splicing than conjugates containing the peptides rTat(57-49) (RRRQRRKKR) and R9, also linked to the PMO via a cysteine residue.
Fig. 9 gives the level of viable HeLa cells after 24 hrs incubation with several of these conjugates at a concentration of 25 μM, showing the low toxicity of the conjugates.
Figs. 10-14 show the effect of various structural modifications of the transporter on the antisense activity of the PMO-transporter conjugates. In each Figure, results are expressed in relative light units normalized to microgram of protein, based on luciferase expression in the pLuc705 assay described above. In the conjugates represented in these figures, the PMO is attached, via a cysteine residue, at the C-terminus or right side of the transporter sequence as written and to the 5 '-terminus, or left side as written, of the PMO. Fig. 10 shows the effect of varying the nature or length of the hydrophilic segment of the transporter. As shown, phenylalanine (Phe or F)-containing transporters appeared to be more effective than isoleucine (He or I)-containing transporters. Increasing the length of the hydrophobic segment from 2 to 3 to 4 amino acid subunits did not appear to increase effectiveness.
The total number of arginines in the transporter appears to be significant, in view of the data shown in Fig. 11. As shown therein, in oligopeptides of the series RnF2, oligopeptides where n was 6 or less were much less effective than those where n was 8 or 9. See also Moulton, Nelson et ai, 2004, which is incorporated herein in its entirety by reference.
As shown in Fig. 12, the position of the hydrophobic segment can be altered. In the data represented by F2R9, the R9 segment is at the C-terminus and is attached to the PMO. Significantly, the data shows that the sequence of cationic subunits can be non-contiguous (R5F2R,) Further examples are given in Fig. 15, below.
Table 2 below shows the level of luciferase production (i.e., antisense activity) in HeLa pLuc705 cells after 24 hrs incubation with R9F2-PMO conjugates, linked by either a cleavable linker or a non-cleavable linker of various lengths, where in each case the PMO was attached via a cysteine residue at the C-terminus of the peptide transporter. The structures of the bifunctional cross linkers used in this study are shown in Fig. 13. As shown in the Table, the use of a cleavable (disulfide) linker (see e.g. Fig. 4C) had no significant effect on activity. See also Moulton, Nelson et al, 2004.
Figure imgf000033_0001
As shown in Figure 14, attachment of biotin to the conjugate (biotin-R9F2-PMO) appeared to increase activity at high doses after 6 hours incubation (not shown), but little or no effect was seen at 24 hours.
Further experiments were performed to evaluate the effect of the position of both the 5 hydrophobic segment and the PMO attachment point within the transporter. Figs. 15 and 16 show the results of the pLuc/705 assay carried out with conjugates of PMO 705 (SEQ ED NO: 1) linked to the transport peptides having SEQ ID NO: 13 and 16-26 as shown in Table 1. In each conjugate, the PMO is linked via a C-terminal or internal cysteine (C) residue. As shown by the data, transporters in which the Y subunits are internal (i.e.
10 flanked by X subunits) generally performed as well or better than those in which the Y subunits are at a terminus. The linkage point could be adjacent the Y subunits or remote from the Y subunits.
To determine whether the presence of the transporter adversely affects the antisense specificity of the PMO, as has been observed for Tat transporters (Moulton, Hase et al.
15 2003), the assay was carried out with R9F2-C-PMO conjugates of three mismatched- sequence control PMOs, designated 7052MM (two mismatches, SEQ ID NO:2), 7054I IM (four mismatches, SEQ ID NO:3) and 705SCR (scrambled, SEQ D NO:4) (see Table 1 for sequences). Up to the highest concentration tested, the three control conjugates showed no antisense activity; that is, they did not restore luciferase activity by correcting the 705 splice
20 defect (Figure 17). Accordingly, there was no indication of adverse effects on specificity by the transporter.
Fluorescence microscopy and the splice-correction assay were also used to determine the time required for the conjugate to enter the cytoplasm and nuclei of cells. HeLa, NEH3T3 or HeLa pLuc/705 cells were treated with the R9F2-C-PMO conjugate for 20 5 minutes and imaged. A nuclear stain, dihydroethidium (DHE, Molecular Probes, Eugene, OR), was used to locate the nucleus. Diffuse green fluorescence was seen in both cytoplasm and nucleus, and overlapped with the intense red of DHE in the nucleus.
In the splice-correction assay, the production of functional luciferase was monitored over time, showing that luciferase was produced after as little as 120 minutes of incubation
30 time with the R9F2C-705 PMO (Fig. 18). C. Antisense Activity in Cell-Free Systems
To investigate antisense activity of the conjugates in a manner independent of cellular transport, peptide-conjugated and unconjugated PMOs were tested in a cell-free translation system for their ability to sterically block translation of a downstream reporter gene. The effects of various antisense PMOs on translation of in vitro transcribed RNA from plasmids containing various viral nucleotide sequences fused directly upstream of the coding region for firefly luciferase (fLUC) were measured by in vitro translation reactions in a commercially available rabbit reticulocyte lysate (RRL) system, as described in Example 9. Specifically, three different regions of the Dengue type 2 virus were fused to the fLUC gene and a region surrounding the AUG start codon of the human c-myc gene. Also targeted was a sequence of murine hepatitis virus (MHV) that surrounds the start codon of the lab gene (Neuman, B.W. et al, J. Virol. 2004, in press).
As shown in Figures 21-23 and 28, conjugation of the antisense oligomers to peptide transporters of the invention was found to increase effectiveness of the antisense PMOs by between 10-500 fold, as reflected by the concentration required to achieve 50% inhibition of target expression (EC50). Conjugation to R F2 enhanced the antisense effectiveness of the PMO compared to unconjugated PMO by as much as 500 fold (Figures 21-23). As shown in Figure 28, similar results were obtained using the (RAhxR)4 peptide (SEQ ID NO:34) conjugated to an anti-c-myc PMO (SEQ ED NO:5). Although the scope of the invention is not limited by mechanism, the enhanced antisense activity observed with the peptide conjugates of the invention in cell free translation systems may be due to a localized disruption of RNA secondary structure by the peptide. One construct used in the RRL assays, pDCLD, contains the 5' most 204 bases of the Dengue virus genome, which encodes the initial 35 amino acids of the polyprotein, placed in frame with the fLUC gene. The computer-predicted RNA structure for this region, shown in Figure 29, which was generated using the 'mfold' RNA folding program (Zuker 2003), indicates extensive secondary structure. The secondary structure shown in Figure 29 also agrees with that predicted by Khromykh et al. for the same region of a distinct but related flavivirus, Kunjin virus (Khromykh, Kondratieva et al, 2003). The ability of unconjugated antisense PMOs to hybridize and block translation can be inhibited by certain secondary structures, as appears to be the case for this segment of RNA, as shown in Figure 23. In this example, unconjugated PMO was unable to produce a 50% reduction in translation despite increasing concentration. However, R F2 peptide conjugated PMO has greatly enhanced antisense activity, producing nearly 100% suppression of the reporter gene translation at the same concentration (Fig. 23). D. Biodistribution in vivo
Tissue culture experiments from a variety of experimental systems clearly demonstrate that the transport peptides of the invention enhance delivery to intracellular compartments, including the cytoplasm and nucleus. To extend these observations to an in vivo system, a comparative analysis of PMO and peptide conjugated PMO uptake in spleen and lymph node cells was performed in mice. As described in Example 10 and shown in Figure 27, the RsF^ transport peptide (SEQ ED NO:20) greatly enhanced delivery to spleen and lymph node cells in total, and to specific subpopulations of cells from these tissues, including CD4 and CD8 positive lymphocytes, monocytes, macrophages and B cells. Furthermore, as described in Example 10, peptide conjugated PMO were shown to have significant residence time in spleen and lymph node-derived cells four days after a multidose PMO treatment regimen in mice had ended.
III. Applications
The transporters and conjugates of the invention are particularly useful for targeting a substantially uncharged antisense oligomer, such as a PMO, to a cell nucleus, by exposing the cell to a conjugate comprising the oligomer covalently linked to a transport peptide as described above. The transporters are effective to deliver the antisense oligomer across both the cell and nuclear membranes, and to enhance the antisense activity of the oligomer, as demonstrated above. Nuclear delivery allows targeting of splice sites, which can be implemented for generating dominant/negative proteins, which preserve, for example, the feedback function of a protein, but not its enzymatic activity. This is accomplished by selectively inhibiting splice donor or acceptor sites in pre-mRNA that eliminate from the mature spliced mRNA one or more exons encoding unwanted functions. Useful gene targets for this approach include, but are not limited to, CD86, c-FLIP, CTLA-4, TGF-b and c-myc. The translation start site (i.e. the AUG start codon) is another useful target for antisense therapy, as are cis-acting elements required for viral replication or transcription.
The inhibition of viral replication can be accomplished either by blocking translation of essential viral proteins or by targeting regions of the viral genome required for either nucleic acid replication or mRNA transcription. These cis-acting elements are often located in untranslated regions (UTRs) of the viral genome and typically found at either or both the 5' and 3' termini of the genome. Examples of these elements include internal ribosome entry sites (IRES) as found in hepatitis C virus (HCV), transcriptional regulatory sequences (TRS) as found in the human coronavirus that causes systemic acquired respiratory syndrome (SARS), cyclization sequences (CS) as found in flaviviruses, and the tRNA primer binding site (PBS) found in retroviruses such as human immunodeficiency virus (HIV). Often, these elements have extensive secondary structural characteristics and are recalcitrant to binding of antisense oligomers. Conjugation of peptides as disclosed herein to substantially uncharged antisense oligomers is believed to allow disruption of such secondary structures and thus enhanced binding of the oligomers to their targets.
Therefore, the methods and compositions of the invention described herein provide the ability to more effectively target these regions of viral genomes and inhibit viral replication.
PMO conjugates find use, in general, in any indication in which delivery of an oligonucleotide to a cell is desired, including antisense applications. Such indications include, but are not limited to, proliferative disorders or ischemia, by targeting p53; polycystic kidney disease, restenosis, and cancer, by targeting c-myc; pulmonary inflammation or septic shock, by targeting TNF-α; alteration of drug metabolism, by targeting P450 enzymes; prostate cancer, by targeting β-HCG or androgen receptor; glioblastoma, by targeting integrin αV. Treatment of stem cells with antisense oligonucleotides targeted to genes preferentially expressed in such cells can also be used for cancer treatment (e.g. co-owned and copending US application 09/679,475; PCT Pubn. No. WO 01/25405). Treatment of infectious diseases using antisense oligonucleotides targeted to either viral genes or cis-acting sequences involved in replication or transcription can be used as antiviral therapeutic treatments (e.g. co-owned and copending US applications 10/272,865, pubn. no. US 2002/0171335; 10/422,671, pubn. no. US 2003/0224353; 60/493,990; 60/493,043; 60/514,064; and 60/532,701). Treatment of certain immunologic conditions can be facilitated using antisense oligonucleotides conjugated to peptides that can provide intracellular delivery specifically to naive or activated lymphocytes (e.g. co-owned and pending US application 60/505,418).
The conjugates are particularly useful in treatment of vascular proliferative disorders such as restenosis. Areas of vessel injury include, for example, restenosis or renarrowing of the vascular lumen following vascular intervention, such as coronary artery balloon angioplasty, with or without stent insertion. Restenosis is believed to occur in about 30% to 60% of lesions treated by angioplasty and about 20% of lesions treated with stents within 3 to 6 months following the procedure. (See, e.g., Dev, N.B. et al, Cathet Cardiovasc Diagn 45(3):337-45, 1998). Stenosis can also occur after a coronary artery bypass operation, wherein heart surgery is done to reroute, or "bypass," blood around clogged arteries and improve the supply of blood and oxygen to the heart. In such cases, the stenosis may occur in the transplanted blood vessel segments, and particularly at the junction of replaced vessels. Stenosis can also occur at anastomotic junctions created for dialysis.
In this aspect, a PMO conjugate, preferably targeting c-myc, is employed in a coated stent, in a soaking solution for treatment of saphenous veins, or otherwise delivered to the site of vascular injury. Microbubble compositions, such as described below, have been found particularly useful in delivery of attached molecules, such as oligonucleotides, to areas of thrombosis or vessel injury, e.g. damaged endothelium (see e.g. Kipshidze et al, 2001, 2002; Kim et al, 2001; PCT Pubn. No. WO 2000/02588) as well as to selected organs such as the liver and kidney. A preferred antirestenotic composition is an anti-c- myc PMO (e.g. SEQ ID NO:5) conjugated to an (RAhxR)4 (SEQ ID NO:34) transport peptide through an Ahx-βAla linker (as shown in Fig. 4D).
IV. Compositions Containing PMO-Transporter Conjugates and Microbubble Carrier Suspensions
Aqueous suspensions of insoluble gas-containing microbubbles have been shown to be effective vehicles for delivery of oligonucleotides, including PMOs, as described, for example, in co-owned U.S. Patents 5,849,727 and 6,117,858 and pending US application 10/668,988. In general, the composition comprises a liquid suspension, preferably an aqueous suspension, of microbubbles containing a blood-insoluble gas. The microbubbles are preferably about 0.1 to 10 μ in diameter. Generally, any blood-insoluble gas which is nontoxic and gaseous at body temperature can be used. The insoluble gas should have a diffusion coefficient and blood solubility lower than nitrogen or oxygen, which diffuse in the internal atmosphere of the blood vessel. Examples of useful gases are the noble gases, e.g. helium or argon, as well as fluorocarbon gases and sulfur hexafluoride. Generally, perfluorocarbon gases, such as perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane, and perfluoropentane, are preferred.
The gaseous microbubbles are stabilized by a fluid filmogenic coating, to prevent coalescence and to provide an interface for binding of molecules to the microbubbles. The fluid is preferably an aqueous solution or suspension of one or more components selected from proteins, surfactants, lipids, including phospholipids, and polysaccharides. In preferred embodiments, the components are selected from proteins, surfactant compounds, and polysaccharides. Suitable proteins include, for example, albumin, gamma globulin, apotransferrin, hemoglobin, collagen, and urease. Human proteins, e.g. human serum albumin (HSA), are preferred.
Conventional surfactants include compounds such as alkyl polyether alcohols, alkylphenol polyether alcohols, and alcohol ethoxylates, having higher alkyl (e.g. 6-20 carbon atom) groups, fatty acid alkanolamides or alkylene oxide adducts thereof, and fatty acid glycerol monoesters. Surfactants particularly intended for use in microbubble contrast agent compositions are disclosed, for example, in Nycomed Imaging patents US 6,274,120 (fatty acids, polyhydroxyalkyl esters such as esters of pentaerythritol, ethylene glycol or glycerol, fatty alcohols and amines, and esters or amides thereof, lipophilic aldehydes and ketones; lipophilic derivatives of sugars, etc.), US 5,990,263 (methoxy-terminated PEG acylated with e.g. 6-hexadecanoyloxyhexadecanoyl), and US 5,919,434.
Other filmogenic synthetic polymers may also be used; see, for example, U.S. Patent Nos. 6,068,857 (Weitschies) and 6,143,276 (Unger), which describe microbubbles having a biodegradable polymer shell, where the polymer is selected from e.g. polylactic acid, an acrylate polymer, polyacrylamide, polycyanoacrylate, a polyester, polyether, polyamide, polysiloxane, polycarbonate, or polyphosphazene, and various combinations of copolymers thereof, such as a lactic acid-glycolic acid copolymer. Such compositions have been used as contrast agents for diagnostic ultrasound, and have also been described for therapeutic applications, such as enhancement of drug penetration (Tachibana et al, U.S. Patent No. 5,315,998), as thrombolytics (Porter, U.S. Patent No. 5,648,098), and for drug delivery (Unger, U.S. Patent No. 6,143,276; Klaveness et α/., U.S. Patent No. 6,261,537; Porter et al, U.S. Patent No. 6,117,858). In one embodiment, the carrier is a suspension of perfluorocarbon-containing dextrose/albumin microbubbles known as PESDA (perfluorocarbon-exposed sonicated dextrose/albumin). Human serum albumin (HSA) is easily metabolized within the body and has been widely used as a contrast agent. The composition may be prepared as described in co-owned U.S. Patents 5,849,727 and 6,117,858. Briefly, a dextrose/albumin solution is sonicated while being perfused with the perfluorocarbon gas. The microbubbles are preferably formed in an N2-depleted, preferably N2-free, environment, typically by introducing an N2-depleted (in comparison to room air) or N2-free gas into the interface between the sonicating horn and the solution. Microbubbles formed in this way are found to be significantly smaller and stabler than those formed in the presence of room air. (See e.g. Porter et al, U.S. Patent No. 6,245,747.)
The microbubbles are conjugated with a compound to be delivered, such as a PMO-transporter conjugate, simply by incubating the microbubble suspension, with agitation if necessary, with a liquid formulation of the compound. The incubation may be carried out at room temperature, or at moderately higher temperatures, as long as the stability of the drug or the microbubbles is not compromised. It is believed that compounds incubated with such suspensions non-covalently bind at the gas-fluid interface of the microbubbles, and that, upon administration, the cell membrane fluidizing feature of the insoluble (e.g. perfluorocarbon) gas enhances cell entry for the compound.
V. Modified Antisense Oligonucleotides
In another aspect, the invention provides antisense oligomers which are themselves modified with charged moieties of the structure R1N=C(NH2)R2, where R1 is H or R, and R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain moiety is linked to the amino acid subunit via R1 or R2. Specifically, the oligomer comprises a sequence of subunits connected by intersubunit linkages, where the sequence of subunits supports a sequence of bases effective to hybridize to a complementary-sequence target polynucleotide, to form a target/antisense duplex; and, carried on at least six contiguous intersubunit linkages, a charged moiety as described above. In a preferred embodiment, the charged moieties are independently selected from the group consisting of guanidyl (-HN=C(NH2)NH-), amidinyl (-C(=NH)(NH2)), 2-amino hexahydropyrimidyl (=HN-CH(NH2)NH-), 2-aminopyridinyl (-C(=N)(NH2)), and 2-aminopyrimidonyl (-HN-C(NH2)=N-) (see Fig. 3).
Preferably, the oligomer is an uncharged oligomer. Examples of uncharged antisense oligomers are shown in Figs. 19A-G. A small number of charged linkages, e.g. phosphorothioate or, more preferably, charged phosphoramidate, may also be incorporated into the oligomers, preferably fewer than one charged linkage per four uncharged linkages. The uncharged linkages shown in Fig. 19 include carbonate (19A, R=O) and carbamate (1 A, R=NH2) linkages; alkyl phosphonate and phosphotriester linkages (19B, R=alkyl or O- alkyl); amide linkages (19C); sulfones (19D, Rh R2 = CH2); sulfonamides (19D, R,=NH, R2=CH2, or vice versa); sulfamates (19D, Rj, R2 = NH); thioformacetyl (19E) and 3'-methylene-N-methylhydroxyamino (19F). Preferred uncharged antisense oligomer types include alkyl phosphonate-, phosphotriester-, and phosphoramidate- or phosphorodiamidate-linked oligonucleotides. In Figs. 19A-G, B represents a purine or pyrimidine base-pairing moiety effective to bind^ by base-specific hydrogen bonding, to a base in a polynucleotide, preferably selected from adenine, cytosine, guanine, thymine and uracil. Although Figs. 19A-F depict deoxyribose rings, subunits may also comprise, for example, substituted ribose rings or moφholino rings, as described above.
In a preferred embodiment, the oligomer comprises morpholino subunits, e.g. as shown in Fig. 1, linked by phosphorodiamidate linkages, as shown in Fig. 2B. In this case, the charged moiety is preferably attached at the phosphorus atom of the linkage, via the side group X, which is typically amino.
For example, Fig. 20 shows the preparation of a phosphorodiamidate-linked morpholino oligomer having a modified amino side chain. PMOs are conveniently synthesized via 5'-activated morpholino subunits having a protected morpholino nitrogen, as shown, for example, in U.S. Patent No. 5,185,444. Such subunits having dialkylamino side chains can be stored at low temperature for months prior to use (see e.g. Summerton and Weller, Antisense & Nucleic Acid Drug Dev. 7:187-195, 1997). As described, for example, in U.S. Patent No. 5,378,841, which is incorporated herein by reference, such a subunit having a dimethyl amino side chain was prepared by reaction of the N-protected 5'- hydroxy morpholino subunit with dimethylamino dichlorophosphate (POCl2N(CH3)2). Such N-substituted phosphoramidic dichlorides (POCl NRR') can be prepared by reaction of the desired amine; i.e. dimethylamine HCl in this case, with phosphorous oxychloride.
EXAMPLES The following examples are intended to illustrate but not to limit the invention.
Materials and Methods
Peptide and Morpholino synthesis All peptides were custom synthesized by Global Peptide Services (Ft. Collins, CO) or at AVI BioPharma (Corvallis, OR) and purified to >90% purity (see Example 2 below). PMOs were synthesized at AVI BioPharma in accordance with known methods, as described, for example, in Summerton and Weller, 1993, 1997, and U.S. Patent No. 5,185,444.
Cell Culture
HeLa pLuc/705 (Kang, Cho et al. 1998) is the HeLa S3 cell line stably transfected with a plasmid carrying the luciferase coding sequence interrupted by a mutated human β- globin intron 2 (Gene Tools, Philomath, OR). Other cell lines were obtained from ATCC (Manassas, VA). All cell lines were cultured in RPMI 1640 supplemented with 2mM glutamine, 100 μg/ml streptomycin, 100 U/ml penicillin (DME/F12) and 10% of fetal bovine serum (FBS) (Hyclone, Ogden, UT). All assays were carried out with exponentially growing cells in culture media containing 10% fetal bovine serum (FBS) unless otherwise specified. Fluorescence microscopy
Cells were plated onto a 48-well plate. The next day the conditioned medium was removed and the test substances in fresh medium were added to the wells. After incubation, the cells were washed with phosphate-buffered saline (PBS) three times and 5 visualized directly in the culture medium with a Nikon Diaphot 300 inverted microscope. Images were captured with an Olympus digital camera connected to a computer using MagnaFire software (Optronics, Goleta, CA).
Fluorometry 10 HeLa pLuc/705 cells plated in a 48 well plate were treated with medium containing test substance. After incubation, cells were washed with PBS three times.
To measure the sum of membrane-bound and internalized fluorescence, cells were lysed directly in the wells by addition of 100 μl of cell lysis buffer (Promega, Madison, WI) to each well. Cell lysates were collected. The total fluorescence was determined by mixing 15 20 μl of cell lysate and 80 μl of 0.1 M Na2CO3 (pH 1 1) and measuring with an Fix 800 microplate fluorescence-luminescence reader with excitation at 485 nm and emission at 524 nm.
To measure internalized conjugate, the membrane-bound conjugate was removed by trypsinization, as follows. Trypsin (100 μl, 10%, Hyclone, Logan, UT) was added to each 20 well and incubated for 6 minutes at 37°C, followed by addition of 300 μl of culture media.
The cells were spun down and washed with PBS, then lysed with 100 μl cell lysis buffer.
The fluorescence of the cell lysate was measured as described above.
Flow cytometry
25 To analyze the internalization of fluorescein-labeled peptide-PMO conjugates by flow cytometry, HeLa pLuc/705 cells in a 48-well plate were treated with medium containing test substance. After incubation, cells were washed with PBS three times, and 100 μl of trypsin (see above) was added to each well, followed by incubation for 6 minutes at 37°C, then by addition of 300 μl of culture media. The cells were spun down and washed once
30 with PBS, then suspended in 500 μl of a buffer containing PBS with 1% FBS and 0.2% NaN3. The flow data was collected using a BD FACSCalibur™ cytometer, and data was analyzed using FCS Express 2 (De Novo Software, Thornhill, Ontario, Canada).
Cell-free translation assays Plasmids. The coding sequence for firefly luciferase (fLUC) was subcloned into the multiple cloning site of plasmid pCi-Neo (Promega) at the Sal I and Not I sites and the resulting plasmid named pCNlucr. Subsequently, two different nucleotide regions of the Dengue type 2 virus (DEN2, Genbank accession number AY037116) were subcloned into the Nhe I and Sal I sites of pCNlucr. This placed the DEN2 sequences immediately upstream of the start codon of the fLUC gene. Two different plasmids were constructed: pCNDEN3'Cslucr, containing DEN2 nucleotides 10606 to 10646, and pCNDEN5'Cslucr, containing DEN2 nucleotides 119 to 161. PMOs targeting these regions (DEN3'CS and DEN5'CS) are listed in Table 1 as SEQ ID NOS: 7 and 6, respectively.
A similar construct using a portion of the murine hepatitis virus (MHV) genome was constructed in the same vector (pCNlucr) by inserting nucleotides 188 to 230 of MHV (Genbank accession number AF029248) into the Nhel and Sail sites of pCNlucr. This fragment of MHV contains nucleotides -22 to +21 relative to the "A" of the AUG of the MHV Orf la gene and generates a fusion protein with the luciferase reporter gene. The PMO that targets this region is SEQ ID NO: 9. A fourth plasmid construct (pDCLD) was made using a pUC-derived vector that placed a larger portion of the DEN2 sequence (GenBank accession number U87411, nucleotides 1 to 204),containing the 5' end of the DEN2 polyprotein coding sequence, immediately upstream and in frame with the fLUC gene. A PMO that targets this region (DEN AUG) is listed as SEQ ED NO: 8 in Table 1. The DEN AUG PMO targets the DEN2 polyprotein start codon and its target is highlighted in Figure 29 (nucleotides 87- 106).
A fifth plasmid construct was created with a 30 base pair region surrounding the ATG start codon of the human c-myc gene (5'- AGCCTCCCGCGACGATGCCCCTCAACGTTA-3', SEQ ED NO: 42, Genbank accession number V00568) subcloned into the Nhe I and Sal I sites of pCNlucr and named pCNmycluc. This placed the c-myc coding sequences in frame with the amino acid coding sequences of the fLUC gene (c-myc:fLUC). A PMO targeting this region of c-myc, designated AVI-4126, is listed as SEQ ED NO: 5.
Transcription and translation. All of the above-described plasmids include the T7 RNA polymerase promoter upstream of the viralfLUC sequences and allow RNA to be produced from these plasmids, after linearization with either Notl or SnaBl, using the T7 polymerase-based Megascript kit and protocol (Ambion).
In vitro translations were carried out using transcribed RΝA, at a final concentration in each reaction of lnM, with 12 μl nuclease-treated rabbit reticulocyte lysate (Promega) in addition to PMO, R9F2-PMO, or water. Translation reaction mixture (10 μl) was then mixed with 50 μl luciferase assay reagent (Promega) according to manufacturer's instructions, and light emission was read on a FLx800 microplate luminometer (BIO-TEC Instruments). Reactions were assayed for relative light units with the KC Junior program (BIO-TEC) using the luminescence function and a sensitivity setting of 125. In the experiments described herein, twelve reactions were assayed at one time, including water- control reactions in the first and last well of each row. The relative light units (RLU) produced by each reaction was normalized to the mean of all control reactions and expressed either as percent inhibition of luciferase expression or relative light units as a function of PMO concentration, as described in Example 8.
Protease Digestion of Peptide-PMO Conjugates
Experiments to measure the resistance of peptide-PMO conjugates to protease digestion were performed as follows. Proteinase K(10 units) was placed in 0.1ml of 50mM Tris-HCI (pH 7.2), 5mM CaCl2 buffer and 40μg of peptide-PMO (R9F2C-705) conjugate (SEQ ID NO: 13- C-SEQ ED NO: 1) was added. After either 5 minutes or 2 hours at 37 degrees C, samples were frozen on dry ice until analysis by MALDI TOF mass spectroscopy.
Example 1. 3'- Fluoresceination of a PMO
A protected and activated carboxyfluorescein, e.g. 6-carboxyfluorescein dipivalate N-hydroxysuccinimide ester, commercially available from Berry & Associates, Inc. (Dexter, MI), was dissolved in NMP (0.05M), and the solution was added to a PMO synthesis column (see "Morpholino synthesis", above) in sufficient volume to cover the resin. The mixture was incubated at 45°C for 20 minutes, then the column was drained and a second similar portion of protected and activated carboxyfluorescein was added to the column and incubated at 45°C for 60 minutes. The column was drained and washed with NMP, and the oligomer was cleaved from the resin using 1 ml of cleavage solution (0. IM dithiothreitol in NMP containing 10% triethylamine). The resin was washed with 300 μl of cleavage solution three times, immediately followed by addition of 4 ml of concentrated ammonia hydroxide and 16 hours incubation at 45°C to remove base protecting groups. The morpholino oligomer was precipitated by adding 8 volumes of acetone, the mixture was centrifuged, and the pellet was washed with 15 ml of CH3CN. The washed pellet was re- dissolved in 4 ml of H2O and lyophilized. The product was analyzed by time-of-flight MALDI mass spectrometry (MALDI-TOF) and high pressure liquid chromatography (HPLC).
Example 2. Peptide synthesis and Attachment of Transport Peptide
Peptides were synthesized by Fmoc Solid Phase Peptide Synthesis, referred to herein as SPPS. A p-benzyloxybenzyl alcohol resin was used for synthesis of peptides with a C- terminal acid, while a Rink Amide MBHA resin was used for peptide amides. Both resins are available from Novabiochem (San Diego, CA). A typical synthesis cycle began with N- terminal deprotection via 20% piperidine. Then, N-α-Fmoc-protected amino acids were coupled to the growing peptide chain by activation with 2-(lH-benzotriazole-l-yl)-l, 1,3,3- tetramethyluronium hexafluorophosphate (HBTU) in the presence of N,N- diisopropylethylamine (DEEA). Arginine side chains were protected with the 2,2,4,6,7- pentamethyldihydrobenzofuran-5-sulfonyl (Pbf) protecting group, cysteine with trityl, and lysine side chains with t-butoxycarbonyl (Boc). The cycle was repeated until all of the amino acids were added, in a carboxy-to-amino direction, in the desired sequence. Cleavage from the synthesis resin and side chain deprotection were carried out simultaneously by treating the peptidyl-resin with a solution of 2.5% H2O, 2.5% triisopropyl silane (TIS), and 95% trifluoroacetic acid (TFA). For peptides containing a cysteine residue, 2.5% 1,2-ethanedithiol (EDT) was added to the cleavage cocktail. Crude peptides were isolated by precipitation using a tenfold excess of diethyl ether. Strong cation exchange HPLC utilizing Source 15S resin (Amersham Biosciences, Piscataway, NJ) was used for purification, followed by a reversed phase desalt employing Amberchrom 300M resin (Tosoh Bioscience, Montgomeryville, PA). Desalted peptides were lyophilized and analyzed for identity and purity by MALDI-TOF MS, strong cation exchange (SCX) HPLC, and capillary electrophoresis (CE).
Peptides containing various C-terminal hydrophobic linkages were prepared as follows. Peptides were prepared for direct condensation with an amine or hydroxy group of the PMO by including combinations of natural and/or non-natural amino acids at the C-terminal end of the peptide during SPPS. Specifically, the linkages were comprised of the amino acids glycine, beta-alanine, and/or 6-aminohexanoic acid, used in different combinations of one or two residues. Peptide synthesis was otherwise identical to the synthesis of other peptide acids.
Peptide sequences that contain amine side chains, such as rTat and pTat (Table 1), were prepared using the l-(4,4-dimethyl-2,6-dioxocyclohex-l-ylidene)ethyl (Dde) amine side chain protecting group. Lysine Dde groups survived the resin cleavage and deprotection of other amino acid side chain protecting groups. The side chain amines remain masked by Dde through conjugation with the PMO and are subsequently deprotected by treatment with 2% hydrazine in DMF.
The 5' attachment of a transport peptide via an amide bond was performed as follows. A C-terminally reactive peptide-benzotriazolyl ester was prepared by dissolving the peptide-acid (15 μmol), HBTU (14.25 μmol), and HOBt (15 μmol) in 200 μl NMP and adding DIE A (22.5 μmol). Immediately after addition of DIE A, the peptide solution was added to 1 ml of a 12 mM solution of 5'-piperazine-functionalized, 3'-acetyl-PMO in DMSO. After 180 minutes at 30°C, the reaction was diluted with a four-fold excess of water. The crude conjugate was purified first through a CM-Sepharose weak cation exchange column (Sigma, St. Louis, MO), to remove unconjugated PMO, and then through a reversed phase column (HLB column, Waters, Milford, MA). The conjugate was lyophilized and analyzed by MALDI-TOF MS, SCX HPLC, and CE. Example 3. 3'-Acetylation of PMO and 5' Attachment of Transport Peptide.
Acetic anhydride (0.1 M), dissolved in N-methyl-2-pyrrolidinone (NMP) containing 1% N-ethyl morpholine (v/v), was added to a PMO synthesis product while the oligomer was still attached to the synthesis resin. After 90 minutes at room temperature, the oligomer was washed with NMP, cleaved from the synthesis resin, and worked up as described above. The product was analyzed by MALDI-TOF mass spectrometry (MALDI- TOF) and HPLC. The desired product included a 3'-acetyl group and was capped at the 5 '-end with piperazine, which was used for conjugation, as described below and shown in Fig. 4A. The linker reagent, N- (γ-maleimidobutyryloxy)succinimide ester (GMBS), was dissolved in 50 μl of DMSO, and the solution was added to the oligomer (2-5 mM) in sodium phosphate buffer (50 mM, pH 7.2) at a 1 :2 PMO/GMBS molar ratio. The mixture was stirred at room temperature in the dark for 30 minutes, and the product was precipitated using a 30-fold excess of acetone, then redissolved in water. The PMO- GMBS adduct was lyophilized and analyzed by MALDI-TOF and HPLC. The adduct was then dissolved in phosphate buffer (50mM, pH 6.5, 5 mM EDTA) containing 20% CH3CN, and the transport peptide was added, at a 2: 1 peptide to PMO molar ratio (based on a PMO concentration as determined by its absorbance at 260 nm). The reaction was stirred at room temperature in the dark for 2 hours. The conjugate was purified first through a CM- Sepharose (Sigma, St. Louis, MO) cationic exchange column, to remove unconjugated PMO, then through a reverse phase column (HLB column, Waters, Milford, MA). The conjugate was lyophilized and analyzed by MALDI-TOF and capillary electrophoresis (CE). The final product contained about 70% material corresponding to the full length PMO conjugated to the transport peptide, with the balance composed of shorter sequence conjugates, a small amount of unconjugated PMO, both full length and fragments, and a very small amount (about 2%) of unconjugated peptide. The concentration determination used for all experiments was based on the total absorbance at 260 nm, including all shorter PMO sequences in the sample.
Example 4. 3 '-Attachment of Transport Peptide.
A PMO having a free secondary amine (ring nitrogen of morpholine) at the 3 '-end (see Fig. 4B) was dissolved in lOOmM sodium phosphate buffer, pH 7.2, to make a 2-5 mM solution. The linking reagent, GMBS, was dissolved in 100 μl of DMSO and added to the PMO solution at a PMO/GMBS ratio of 1 :2. The mixture was stirred at room temperature in the dark for 30 min, then passed through a P2 (Biorad) gel filtration column to remove the excess GMBS and reaction by-products.
The GMBS-PMO adduct was lyophilized and re-dissolved in 50mM phosphate buffer, pH 6.5, to make a 2-5 mM solution. A transport peptide, represented by T-SH in Fig. 4B, was added to the GMBS-PMO solution at a molar ratio of 2: 1 peptide to PMO. (The thiol -SH is the side chain of a single cysteine residue.) The reaction mixture was stirred at room temperature for 2 hours or at 4°C overnight. The conjugate was purified by passing through Excellulose gel filtration column (Pierce Chemical) to remove excess peptide, then through a cation exchange CM-Sepharose column (Sigma) to remove unconjugated PMO, and finally through an Amberchrom reverse phase column (Rohm and Haas) to remove salt. The conjugate was lyophilized and characterized by MS and HPLC.
Example 5. Preparation of a PMO-Peptide Conjugate Having a Cleavable Linker
The procedure of Example 3 or Example 4 is repeated, employing N-succinimidyl 3- (2-pyridyldithio) propionate (SPDP) or succinimidyloxycarbonyl α-methyl-α-(2- pyridyldithio) toluene (SMPT) as linking reagent (see Fig. 4C), in place of GMBS.
Example 6. Uptake of Labeled PMO-Peptide Conjugates
HeLa cells were stably transfected with plasmid pLuc/705, which has a luciferase gene interrupted by a human β-globin intron mutated at nucleotide 705, thus causing incorrect splicing (Kang et al, 1998; Kole et al, 2001; Yan et al, 2002). Because the mis-spliced transcripts do not produce functional reporter proteins, no reporter signals are observed unless wild-type splicing is induced with a splice-correcting oligomer. An antisense oligomer targeting the 705 splice site (having SEQ ID NO: 1, also designated "PMO 705"), when delivered effectively, corrects splicing and allows luciferase expression.
This assay measures the ability of steric blocking oligomers to enter cells and nuclei, block incorrect splicing of pre-mRNA, and thus cause expression of a reporter gene. It avoids the confusion of cytotoxicity with activity that can affect down-regulation assays, as cells must be able to carry out RNA processing and translation to produce a signal. Because oligomers must enter cells and cell nuclei to produce a signal in the assay, it is very useful for measuring uptake and effectiveness of delivery moieties. In addition, because no or very little signal is present before splice correction, the assay has a favorable signal-to- noise ratios. These unambiguously positive readouts allow convenient quantitative comparisons between the effects of different transporters on oligomer delivery (Moulton et al, 2003, Astriab-Fisher et al, 2002).
The time course of the uptake of various transpoiter-PMO-fluorescein conjugates, as described above, in HeLa pLuc/705 cells was studied by fluorescence spectroscopy. Experiments were generally run in triplicate. According to the general procedure, culture medium containing the test substance at a specified concentration was added to HeLa pLuc/705 cells plated in a 48-well plate. After incubation, at each time point, the cells were washed with PBS three times, and the cell lysate was collected as described under "Fluorometry", above. The amount of functional luciferase produced was determined by mixing 30 μl of cell lysate and 50 μl of Luciferase Assay Reagent (LAR) (Promega, WI) and measuring the light production using a Fix 800 microplate fluorescence/luminescence reader (Bio-tek, Vermont). The relative light units were normalized to μg of protein determined by the bicinchoninic acid (BCA) method, following the manufacturer's procedure (Pierce, L).
Example 7. Preparation of PMO Having Modified Intersubunit Linkages
A. Preparation of Cl2P(O)NH-(CH2)n-NH-C(=NH)-NH7
A suspension containing 0.1 mole of RNH2 HCl, where R = -(CH2)n-NH-C(=NH)- NH2 (e. . 2-aminoethylguanidine hydrochloride, where n=2), in 0.2 mol of phosphorous oxychloride (POCl3) is refluxed for 12 hours and then distilled under reduced pressure to give the N-substituted dichlorophosphoramide.
B. Preparation of Activated Morpholino Subunit
One mmol of a 5'-hydroxyl subunit, base-protected and tritylated on the morpholino nitrogen (Structure 1, Fig. 20), prepared by standard methods (see e.g. U.S. Patent No. 5,378,841) is dissolved in 5 ml of dichloromethane. Six mmol of N-ethylmorpholine and 2 mmol of Cl2P(O)NH-(CH2)n-NH-C(=NH)-NH2, prepared as described above, are added, followed by 0.5 mmol N-methylimidazole. When the reaction is complete as assessed by thin layer chromatography, the reaction mixture is washed with aqueous NaH2PO4 and concentrated. The residue is fractionated on a silica gel column, eluting with 1 :4 acetone/chloroform, to give the activated subunit (Structure 2, Fig. 20). C. Oligomerization
The activated monomer 2 is reacted with a 5'-O-support-bound subunit to give the support-bound dimer 3. The dimer is detritylated and reacted in a similar manner with further activated subunits prepared in the manner described above.
Example 8. Peptide Conjugated PMOs Exhibit Enhanced Steric Blocking Properties in Cell-free Translation Reactions Compared to Unconjugated PMO
To investigate antisense activity of conjugates in a manner independent of cellular transport, peptide conjugated and unconjugated PMO were tested in a cell free translation system for their ability to sterically block translation of a downstream reporter gene. The effect of various antisense PMOs and PMO peptide conjugates on cell free in vitro translation of RNA, transcribed in vitro from plasmids containing various viral nucleotide sequences fused directly upstream of the coding region for firefly luciferase (fLUC), was measured in a rabbit reticulocyte lysate (RRL) system. As shown in Figs. 21-23, conjugation of R9F2 (SEQ ID NO: 13) to PMOs increased effectiveness of the antisense PMOs by between 10-500 fold, based on the concentration required to achieve 50% inhibition of target expression. Figures 21-23 represent the results of these analyses using three different regions of the Dengue type 2 virus fused to the fLUC gene, as described above under Materials and Methods. The region of Dengue viral RNA genome used in the pDCLD construct is known to have a extensive secondary structure (Khromykh, Kondratieva et al. 2003), as shown in Figure 29.
A plasmid construct with a 30 base pair region surrounding the ATG start codon of the human c-myc gene was placed in frame with the amino acid coding sequences of the fLUC gene (c-myc.fLUC). A PMO targeting this region of c-myc, AVI-4126, is listed as SEQ ID NO: 5. Figure 28 shows the enhanced antisense effect that conjugation of the (RAhxR)4 peptide conveys to the c-myc PMO in the in vitro RRL translation system.
Results were also obtained targeting a sequence of MHV that surrounds the start codon of the lab gene (Neuman, B.W. et al, J.Virol. (2004), in press). In all the above described cases, R9F2 conjugation enhanced the antisense effectiveness of the PMO compared to unconjugated PMO by as much as 500 fold.
Example 9. Transport Peptides that Contain Non-natural Amino Acids Show Enhanced Delivery into Cells. Enhanced Antisense Activity and Resistance to Enzymatic Proteolysis Cellular uptake and antisense activity was investigated, using the 705 splice correction assay described in Example 6, for several conjugates of the invention comprising PMOs conjugated to peptides containing dimers of cationic amino acids alternating with 6- aminohexonic acid (Ahx). The data are shown in Figure 24 for a variety of such conjugates employing Ahx-containing transport peptides (SEQ ID NOs: 33-35 and 37-41). Figure 24 shows the level of luciferase production in HeLa pLuc/705 cells after 24 hours treatment with each of the following: the PMO (705-FL, SEQ ID NO: l) conjugated to R9F2 (SEQ ID NO: 13), (RRAhx)4 (SEQ ID NO:33), (RAhxR)4 (SEQ ED NO:34), (AhxRR)4 (SEQ ID NO:35), (RAhxR)3 (SEQ ED NO:37), (RahxR)2R (SEQ ID NO:38), (RAhxR)2 (SEQ ID NO:39), (RKAhx)4 (SEQ ID NO:40), or (RHAhx)4 (SEQ ID NO:41). It was observed that Ahx-containing transport peptides having at least eight arginine residues performed as well or better than R9F2 in this assay.
The protease sensitivity of the transport peptides was also investigated, as follows. Each of the peptide-PMO conjugates R9F2-705-FL and (RAhxR)4-705-FL was mixed with Proteinase K in lOOμl of 50mM Tris 5mM CaCl2 buffer. The sample was incubated at 37°C for 5 minutes or, in a separate analysis, 2 hours, then placed onto dry ice until analysis by MALDI-TOF mass spectroscopy. The results are shown in Figures 25 and 26, respectively. Fig. 25 shows that the transport peptide containing all natural amino acids, R9F2-C
(MW peak at 8331), was not resistant to proteinase K degradation, as it rapidly converted to the peptide-free PMO (MW peak at 6632). The R9F2-C-PMO conjugate was also sensitive to degradation by trypsin (data not shown). Fig. 26 shows that the transport peptide containing Ahx, (RAhxR)4 (MW peak at 8332), was resistant to proteinase K degradation. O 2004/097017
Example 10. Distribution and Bioavailability in vivo of Peptide Conjugated PMO Compared to Unconjugated PMO
Tissue culture results from a variety of experimental systems clearly demonstrate that the transport peptides described in the present invention enhance delivery to intracellular compartments including the cytoplasm and nucleus. To extend these observations to an in vivo system, a comparative analysis of PMO and peptide conjugated PMO uptake in spleen and lymph node cells was performed in mice.
Nine month old female Y10A mice (FI of B10. A and A.B1; two mice per treatment) were injected intravenously (tail vein) with 0.5ml of PBS containing 150 ug of a 3'- fluoresceinated PMO (scrambled sequence DSscr, 5'-AGT CTC GAC TTG CTA CCT CA-3'-FL; SEQ ID NO: 10) or the same PMO conjugated to R5F2R4 (SEQ ID NO:20) through a cysteine linker at the 5' terminus (R5F2R4-C-DSscr-FL). After 24 hours the mice were sacrificed, the spleens and four lymph nodes from each mouse were taken, and single cell suspensions were prepared and analyzed unstained for fluorescence by flow cytometry. The cells were gated for lymphocytes by forward/side scatter.
Figure 27 shows that cells from both the spleens and lymph nodes had substantially higher uptake of the peptide conjugated PMO (R5F2R,-PMO-FL) as compared to unconjugated PMO (PMO-FL). In addition, splenocytes were stained for different subpopulations of lymphocytes by specific cell surface markers (CD4 and CD8 for lymphocytes, CD19 for B-cells and CDl lb for monocytes/macrophages). Flow cytometric analysis of the stained lymphocytes for fluorescence of the fluorescein-labeled PMO was performed. All these subpopulations demonstrated enhanced uptake of the peptide conjugated PMO compared to unconjugated PMO, as shown in Figure 27.
The effect of multiple injections of peptide conjugated PMO on the relative uptake and residence time in vivo was analyzed as follows. Nine month old, female Y10A mice (n=3) were injected intravenously (tail vein) with 150 μg R5F2R4-C-DSscr-FL on days 0, 3, 5, and 7. At 11 days post injection, mice were sacrificed and single cell suspensions prepared from the spleens and four lymph nodes of each mouse. Unstained flow cytometric analysis of both cell preparations were performed as described above. A substantial percentage of both splenocytes (6.6% ±2.6) and lymphocytes (4.3% +0.7) were positive for R5F2Rι-C- DSscr-FL uptake. Sequence Listing Table
Figure imgf000054_0001

Claims

IT IS CLAIMED.
1. A method for enhancing the ability of an nucleic acid analog having a substantially uncharged backbone and a targeting base sequence to bind to a target sequence in a nucleic acid, the method comprising conjugating to the nucleic acid analog a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six X subunits, at least two Y subunits, and at most three Z subunits, where >50% of said subunits are X subunits, and where (a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid via R1 or R2; (b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)n-NH-, where (i) n is 2 to 7 and each R is independently H or methyl, or (ii) n is 1 and R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every four carbon atoms; and (c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
2. The method of claim 2, wherein said peptide, when conjugated to an antisense oligomer having said substantially uncharged backbone, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein, when binding of the antisense oligomer to its target sequence is effective to block a translation start codon for the encoded protein, or (ii) an increase in expression of an encoded protein, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced.
3. The method of claim 1, wherein said nucleic acid analog is conjugated to said peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
4. The method of claim 1, wherein said neutral amino acid subunit -C(O)-(CHR)n-NH-, where n is 2 to 7 and each R is independently H or methyl, is of the form
-C(O)-(CH2)n-1(CHR)-NH-.
5. The method of claim 1, wherein the peptide includes at least eight X subunits.
6. The method of claim 1, wherein said at least two Y subunits include
(i) two neutral, hydrophobic α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
(ii) two neutral, hydrophobic amino acid subunits -C(O)-(CH2)n-ι(CHR)-NH-, where n is 2 to 7 and R is H or methyl.
7. The method of claim 6, wherein each X is an arginine subunit.
8. The method of claim 1, wherein the peptide has exactly two Y subunits of type (i) which are contiguous or are flanking a cysteine subunit.
9. The method of claim 8, wherein each Y represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain.
10. The method of claim 9, wherein each Y is independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
11. The method of claim 9, wherein each Y is independently selected from phenylalanine and tyrosine.
12. The method of claim 11, wherein the peptide has the formula Arg9Phe2.
13. The method of claim 1, wherein each Y is a neutral, hydrophobic amino acid subunit -CO-(CH2)n.1CHR-NH-, where n is 2 to 7 and R is H.
14. The method of claim 13, wherein n is 5, such that Y is a 6-aminohexanoic acid subunit.
15. The method of claim 14, wherein each X is an arginine subunit.
16. The method of claim 14, wherein said peptide comprises arginine dimers alternating with single Y subunits.
17. The method of claim 16, wherein the peptide has the formula (RYR) .
18. The method of claim 16, wherein the peptide has the formula (RRY)4, and the nucleic acid analog is linked to a terminal Y subunit.
19. The method of claim 1, wherein the nucleic acid analog is a morpholino oligomer, comprising morpholino subunits linked by phosphorus-containing linkages between the morpholino nitrogen of one subunit and an exocyclic carbon at the morpholino 3 -position of an adjacent subunit.
20. The method of claim 19, wherein said morpholino subunits are joined by uncharged phosphorodiamidate linkages, in accordance with the structure:
Figure imgf000057_0001
where Yι=O, Z=O, Pj is a purine or pyrimidine base-pairing moiety effective to bind, by base-specific hydrogen bonding, to a base in a polynucleotide, and X is alkyl, alkoxy, thioalkoxy, or alkyl amino.
21. The method of claim 1, wherein said conjugating forms a peptide-oligomer conjugate which is effective to:
(a) inhibit expression of targeted mRNA in a protein expression system;
(b) inhibit splicing of targeted pre-mRNA; or
(c) inhibit replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus; to a greater degree than said oligomer in unconjugated form.
22. A peptide-nucleic acid analog conjugate, comprising a nucleic acid analog having a substantially uncharged backbone and a targeting base sequence, and covalently linked to the nucleic acid analog, a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least eight X subunits, at least two Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where
(a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid subunit comprising a side chain of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid subunit via R1 or R2;
(b) said at least two Y subunits include
(i) two neutral α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every four carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety, or
(ii) two neutral, hydrophobic amino acid subunits -C(O)-(CH2)„-i(CHR)-NH-, where n is 2 to 7 and R is H or methyl; and
(c) Z represents an amino acid subunit selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
23. The conjugate of claim 22, wherein said peptide, when conjugated to an antisense oligomer having said substantially uncharged backbone, is effective to enhance the binding
5 of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein, when binding of the antisense oligomer to its target sequence is effective to block a translation start codon for the encoded protein, or 10 (ii) an increase in expression of an encoded protein, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced.
24. The conjugate of claim 22, wherein said peptide, when conjugated to an antisense
15 oligomer having said substantially uncharged backbone, is effective to enhance the binding of the antisense oligomer to its target sequence, relative to the antisense oligomer in unconjugated form, as evidenced by:
(i) a decrease in expression of an encoded protein in a cell free translation system, when binding of the antisense oligomer to its target sequence is effective to block a 20 translation start codon for the encoded protein, or
(ii) an increase in expression of an encoded protein in a cell free translation system, when binding of the antisense oligomer to its target sequence is effective to block an aberrant splice site in a pre-mRNA which encodes said protein when correctly spliced.
25 25. The conjugate of claim 22, wherein said peptide is effective to enhance the transport of the nucleic acid analog into a cell, relative to the analog in unconjugated form.
26. The conjugate of claim 22, wherein said nucleic acid analog is conjugated to said peptide via a linker moiety selected from a Y subunit, a cysteine subunit, and an uncharged, 30 non-amino acid linker moiety.
27 The conjugate of claim 22, wherein for each X, the side chain moiety is guanidyl
28 The conjugate of claim 27, wherein each X is an arginine subunit
5 29 The conjugate of claim 22, wherein the peptide has exactly two Y subunits of type (i) which are contiguous or are flanking a cysteine subunit
30 The conjugate of claim 29, wherein each Y represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain
10
31 The conjugate of claim 30, wherein each Y is independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine
32 The conjugate of claim 31, wherein each Y is independently selected from 15 phenylalanine and tyrosine
33 The conjugate of claim 32, consisting of arginine subunits, phenylalanine subunits, a linker moiety, and the nucleic acid analog
20 34 The conjugate of claim 33, wherein the peptide has the formula Arg9Phe2
35 The conjugate of claim 22, wherein each Y is -C(O)-(CH2)n-1(CHR)-NH-, where n is 2 to 7 and R is H
25 36 The conjugate of claim 35, wherein n is 5, such that Y is a 6-aminohexanoic acid subunit
37 The conjugate of claim 36, wherein each X is an arginine subunit
30 38 The conjugate of claim 36, wherein the peptide comprises arginine dimers alternating with single Y subunits
39. The conjugate of claim 38, wherein the peptide has the formula (RYR)4.
40. The conjugate of claim 38, wherein the peptide has the formula (RRY)4, and the nucleic acid analog is linked to a terminal Y subunit.
41. The conjugate of claim 22, wherein the nucleic acid analog is a morpholino oligomer, comprising morpholino subunits linked by phosphorus-containing linkages between the morpholino nitrogen of one subunit and an exocyclic carbon at the morpholino 3 -position of an adjacent subunit.
10
42. The conjugate of claim 41, wherein said morpholino subunits are joined by uncharged phosphorodiamidate linkages, in accordance with the structure:
Figure imgf000061_0001
where Yι=O, Z=O, Pj is a purine or pyrimidine base-pairing moiety effective to bind, by 15 base-specific hydrogen bonding, to a base in a polynucleotide, and X is alkyl, alkoxy, thioalkoxy, or alkyl amino.
43. The conjugate of claim 29, wherein said conjugate is effective to:
(a) inhibit expression of targeted mRNA in a protein expression system; 20 (b) inhibit splicing of targeted pre-mRNA; or
(c) inhibit replication of a virus, by targeting cis-acting elements which control nucleic acid replication or mRNA transcription of the virus; to a greater degree than said oligomer in unconjugated form.
25 44. The conjugate of claim 43, wherein said inhibition is in a cell free system.
45. A method for enhancing cell uptake of a pharmacological agent, the method comprising conjugating to the agent a peptide consisting of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six X subunits, at least two 5 Y subunits, and at most three Z subunits, wherein >50% of said subunits are X subunits, and where
(a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure R1N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl
10 and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain is linked to said amino acid via R1 or R2;
(b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted
15 alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every four carbon atoms; and
(c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
20 46. The method of claim 45, wherein said agent is conjugated to said peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
47. The method of claim 45, wherein said at least two Y subunits include two neutral, hydrophobic α-amino acid subunits having side chains independently selected from 25 substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety.
30 48. The method of claim 47, wherein each X is an arginine subunit.
49. The method of claim 45, wherein the peptide has exactly two Y subunits which are contiguous or are flanking a cysteine subunit.
50. The method of claim 49, wherein each Y represents a hydrophobic α-amino acid 5 subunit having an aryl or aralkyl side chain.
51. The method of claim 50, wherein each Y is independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
10 52. The method of claim 51, wherein the peptide has the formula Arg9Phe2.
53. A conjugate comprising a pharmacological agent covalently linked to a peptide, wherein the peptide consists of 8 to 16 subunits selected from X subunits, Y subunits, and optional Z subunits, including at least six X subunits, at least two Y subunits, and at most
15 three Z subunits, wherein >50% of said subunits are X subunits, and where
(a) each X subunit independently represents arginine or an arginine analog, said analog being a cationic α-amino acid comprising a side chain of the structure R'N^CfNH^R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the
20 side chain is linked to said amino acid via R1 or R2;
(b) each Y subunit independently represents a neutral amino acid -C(O)-(CHR)-NH-, where R is a neutral side chain selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said neutral side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one heteroatom for every *four carbon atoms;
25 and
(c) each Z subunit independently represents an amino acid selected from alanine, asparagine, cysteine, glutamine, glycine, histidine, lysine, methionine, serine, and threonine.
54. The conjugate of claim 53, wherein said peptide is effective to enhance the transport of 30 the agent into a cell, relative to the agent in unconjugated form.
55. The conjugate of claim 53, wherein said agent is conjugated to said peptide via a Y subunit, a cysteine subunit, or an uncharged, non-amino acid linker moiety.
56. The conjugate of claim 53, wherein the peptide includes at least eight X subunits. 5
57. The conjugate of claim 53, wherein said at least two Y subunits include two neutral, hydrophobic α-amino acid subunits having side chains independently selected from substituted or unsubstituted alkyl, alkenyl, alkynyl, aryl, and aralkyl, wherein said side chain, when selected from substituted alkyl, alkenyl, and alkynyl, includes at most one
10 heteroatom for every six carbon atoms, and wherein said subunits are contiguous or are flanking a linker moiety.
58. The conjugate of claim 53, wherein for each X, the side chain moiety is guanidyl.
15 59. The conjugate of claim 58, wherein each X is an arginine subunit.
60. The conjugate of claim 53, wherein the peptide has exactly two Y subunits which are contiguous or are flanking a cysteine subunit.
20 61. The conjugate of claim 60, wherein each Y represents a hydrophobic α-amino acid subunit having an aryl or aralkyl side chain.
62. The conjugate of claim 61, wherein each Y is independently selected from the group consisting of phenylalanine, tyrosine, tryptophan, leucine, isoleucine, and valine.
25
63. The conjugate of claim 61, wherein each Y is independently selected from phenylalanine and tyrosine.
64. The conjugate of claim 63, wherein the peptide has the formula Arg9Phe2. 30
65. A composition for intracellular delivery of a substantially uncharged nucleic acid analog in vivo, comprising a conjugate as provided in claim 1 and a suspension of insoluble gas-containing microbubbles in an aqueous vehicle comprising at least one filmogenic compound selected from a protein, surfactant, lipid, polysaccharide, and combinations thereof.
66. The composition of claim 65, wherein the microbubbles are suspended in an aqueous vehicle comprising albumin, and the insoluble gas is selected from the group consisting of perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane, and perfluoropentane.
67. An antisense composition having
(i) a plurality of subunits connected by intersubunit linkages, and supporting a sequence of bases effective to hybridize to a complementary-sequence target polynucleotide, to form a target/antisense duplex; and (ii) carried on at least six contiguous intersubunit linkages, a charged moiety of the structure R'N=C(NH2)R2, where R1 is H or R; R2 is R, NH2, NHR, or NR2, where R is lower alkyl or lower alkenyl and may further include oxygen or nitrogen; R1 and R2 may together form a ring; and the side chain moiety is linked to said amino acid subunit via R1 or R2
68. The composition of claim 67, wherein the subunits are morpholino subunits, and the linkages are phosphorodiamidate linkages.
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Cited By (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1765414A2 (en) * 2004-05-24 2007-03-28 Avi Biopharma, Inc. Peptide conjugated, inosine-substituted antisense oligomer compound and method
EP1915161A2 (en) * 2005-07-13 2008-04-30 Avi Biopharma, Inc. Antisense antibacterial method and compound
EP2049143A1 (en) * 2006-07-13 2009-04-22 Avi Biopharma, Inc. Improved antibacterial antisense oligonucleotide and method
US8067571B2 (en) 2005-07-13 2011-11-29 Avi Biopharma, Inc. Antibacterial antisense oligonucleotide and method
US20120190630A1 (en) * 2009-02-27 2012-07-26 The Administrators Of The Tulane Educational Fund Amino acid-based compounds, their methods of use, and methods of screening
US8741863B2 (en) 2007-06-29 2014-06-03 Sarepta Therapeutics, Inc. Compound and method for treating myotonic dystrophy
US8999675B2 (en) 2009-08-31 2015-04-07 Gen-Probe Incorporated Dengue virus assay
US9161948B2 (en) 2011-05-05 2015-10-20 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US9278987B2 (en) 2011-11-18 2016-03-08 Sarepta Therapeutics, Inc. Functionally-modified oligonucleotides and subunits thereof
US9469664B2 (en) 2010-05-28 2016-10-18 Sarepta Therapeutics, Inc. Oligonucleotide analogues having modified intersubunit linkages and/or terminal groups
US9534220B2 (en) 2004-07-02 2017-01-03 Sarepta Therapeutics, Inc. Antisense antibacterial method and compound
US9572899B2 (en) 2003-04-29 2017-02-21 Avi Biopharma, Inc. Compositions for enhancing transport of molecules into cells
WO2017112888A1 (en) 2015-12-23 2017-06-29 David Greenberg Antisense antibacterial compounds and methods
US9790495B2 (en) 2014-05-16 2017-10-17 Oregon State University Antisense antibacterial compounds and methods
WO2017184529A1 (en) 2016-04-18 2017-10-26 Sarepta Therapeutics, Inc. Antisense oligomers and methods of using the same for treating diseases associated with the acid alpha-glucosidase gene
WO2017190041A1 (en) 2016-04-29 2017-11-02 Sarepta Therapeutics, Inc. Oligonucleotide analogues targeting human lmna
US9920085B2 (en) 2012-03-20 2018-03-20 Sarepta Therapeutics, Inc. Boronic acid conjugates of oligonucleotide analogues
US10006031B2 (en) 2005-02-09 2018-06-26 Sarepta Therapeutics, Inc. Antisense composition and method for treating muscle atrophy
US10017763B2 (en) 2010-09-03 2018-07-10 Sarepta Therapeutics, Inc. dsRNA molecules comprising oligonucleotide analogs having modified intersubunit linkages and/or terminal groups
US10106795B2 (en) 2011-10-04 2018-10-23 Royal Holloway And Bedford New College Oligomers
WO2019030298A1 (en) 2017-08-08 2019-02-14 Almirall, S.A. Novel compounds activating the nrf2 pathway
WO2019067975A1 (en) 2017-09-28 2019-04-04 Sarepta Therapeutics, Inc. Combination therapies for treating muscular dystrophy
WO2019067979A1 (en) 2017-09-28 2019-04-04 Sarepta Therapeutics, Inc. Combination therapies for treating muscular dystrophy
WO2019067981A1 (en) 2017-09-28 2019-04-04 Sarepta Therapeutics, Inc. Combination therapies for treating muscular dystrophy
US10391098B2 (en) 2014-05-19 2019-08-27 Board Of Regents, The University Of Texas System Antisense antibacterial compounds and methods
WO2020023688A1 (en) 2018-07-27 2020-01-30 Sarepta Therapeutics, Inc. Exon skipping oligomers for muscular dystrophy
WO2020115494A1 (en) * 2018-12-07 2020-06-11 Oxford University Innovation Limited Linkers
WO2020123574A1 (en) 2018-12-13 2020-06-18 Sarepta Therapeutics, Inc. Exon skipping oligomer conjugates for muscular dystrophy
WO2020214763A1 (en) 2019-04-18 2020-10-22 Sarepta Therapeutics, Inc. Compositions for treating muscular dystrophy
US10888578B2 (en) 2016-12-19 2021-01-12 Sarepta Therapeutics, Inc. Exon skipping oligomer conjugates for muscular dystrophy
US10907158B2 (en) 2015-12-23 2021-02-02 Board Of Regents, The University Of Texas System Antisense antibacterial compounds and methods
US11015200B2 (en) 2015-03-18 2021-05-25 Sarepta Therapeutics, Inc. Antisense-induced exon exclusion in myostatin
US11020417B2 (en) 2015-06-04 2021-06-01 Sarepta Therapeutics, Inc Methods and compounds for treatment of lymphocyte-related diseases and conditions
US11103587B2 (en) 2014-05-23 2021-08-31 Genzyme Corporation Multiple oligonucleotide moieties on peptide carrier
US11293024B2 (en) 2014-12-31 2022-04-05 Board Of Regents, The University Of Texas System Antisense antibacterial compounds and methods
WO2022140535A1 (en) 2020-12-23 2022-06-30 Sarepta Therapeutics, Inc. Compositions comprising exon skipping oligonucleotide conjugates for treating muscular dystrophy
WO2022232478A1 (en) 2021-04-30 2022-11-03 Sarepta Therapeutics, Inc. Treatment methods for muscular dystrophy
EP4219717A2 (en) 2018-06-13 2023-08-02 Sarepta Therapeutics, Inc. Exon skipping oligomers for muscular dystrophy
WO2023178230A1 (en) 2022-03-17 2023-09-21 Sarepta Therapeutics, Inc. Phosphorodiamidate morpholino oligomer conjugates
WO2024097822A1 (en) 2022-11-02 2024-05-10 Sarepta Therapeutics, Inc. Formulation of an antisense oligomer conjugate

Families Citing this family (66)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040082509A1 (en) 1999-10-12 2004-04-29 Christophe Bonny Cell-permeable peptide inhibitors of the JNK signal transduction pathway
US8183339B1 (en) 1999-10-12 2012-05-22 Xigen S.A. Cell-permeable peptide inhibitors of the JNK signal transduction pathway
US20050222068A1 (en) * 2003-10-23 2005-10-06 Mourich Dan V Method and antisense composition for selective inhibition of HIV infection in hematopoietic cells
US20050203041A1 (en) * 2003-09-23 2005-09-15 Mourich Dan V. Antisense compound and method for selectively killing activated T cells
US20050171044A1 (en) * 2003-12-24 2005-08-04 Stein David A. Oligonucleotide compound and method for treating nidovirus infections
CA2553104A1 (en) * 2004-01-23 2005-08-11 Avi Biopharma, Inc. Antisense oligomers and methods for inducing immune tolerance and immunosuppression
EP2206781B1 (en) 2004-06-28 2015-12-02 The University Of Western Australia Antisense oligonucleotides for inducing exon skipping and methods of use thereof
USRE48960E1 (en) 2004-06-28 2022-03-08 The University Of Western Australia Antisense oligonucleotides for inducing exon skipping and methods of use thereof
US8129352B2 (en) 2004-09-16 2012-03-06 Avi Biopharma, Inc. Antisense antiviral compound and method for treating ssRNA viral infection
US8357664B2 (en) * 2004-10-26 2013-01-22 Avi Biopharma, Inc. Antisense antiviral compound and method for treating influenza viral infection
EP1656951A1 (en) * 2004-11-12 2006-05-17 Xigen S.A. Conjugates with enhanced cell uptake activity
US20100256041A1 (en) * 2004-11-12 2010-10-07 Christophe Bonny Conjugate Molecule Compounds With Enhanced Cell Uptake Activity
US20060240032A1 (en) * 2005-03-31 2006-10-26 Hinrichs David J Immunomodulating compositions and methods for use in the treatment of human autoimmune diseases
CA2621964A1 (en) * 2005-09-08 2007-03-15 Avi Biopharma, Inc. Antisense antiviral compound and method for treating picornavirus infection
US8524676B2 (en) * 2005-09-08 2013-09-03 Sarepta Therapeutics, Inc. Method for treating enterovirus or rhinovirus infection using antisense antiviral compounds
US8080517B2 (en) * 2005-09-12 2011-12-20 Xigen Sa Cell-permeable peptide inhibitors of the JNK signal transduction pathway
WO2007031098A1 (en) 2005-09-12 2007-03-22 Xigen S.A. Cell-permeable peptide inhibitors of the jnk signal transduction pathway
US8501704B2 (en) 2005-11-08 2013-08-06 Sarepta Therapeutics, Inc. Immunosuppression compound and treatment method
US8785407B2 (en) * 2006-05-10 2014-07-22 Sarepta Therapeutics, Inc. Antisense antiviral agent and method for treating ssRNA viral infection
US20070265215A1 (en) * 2006-05-11 2007-11-15 Iversen Patrick L Antisense restenosis composition and method
EP2109363A4 (en) * 2006-12-29 2014-07-09 Revance Therapeutics Inc Transport molecules using reverse sequence hiv-tat polypeptides
EP3248985B1 (en) * 2007-01-19 2019-10-23 Kai Pharmaceuticals, Inc. Modifications of peptide compositions to increase stability and delivery efficiency
EP2170363B1 (en) * 2007-06-29 2018-08-08 Sarepta Therapeutics, Inc. Tissue specific peptide conjugates and methods
US7989608B2 (en) * 2007-12-28 2011-08-02 Avi Biopharma Inc. Immunomodulatory agents and methods of use
EP2119783A1 (en) * 2008-05-14 2009-11-18 Prosensa Technologies B.V. Method for efficient exon (44) skipping in Duchenne Muscular Dystrophy and associated means
WO2009143865A1 (en) * 2008-05-30 2009-12-03 Xigen S.A. Use of cell-permeable peptide inhibitors of the jnk signal transduction pathway for the treatment of various diseases
WO2009143864A1 (en) * 2008-05-30 2009-12-03 Xigen S.A. Use of cell-permeable peptide inhibitors of the jnk signal transduction pathway for the treatment of chronic or non-chronic inflammatory digestive diseases
SI3133160T1 (en) 2008-10-24 2019-05-31 Sarepta Therapeutics, Inc. Exon skipping compositions for dmd
EP2376633A1 (en) * 2008-12-17 2011-10-19 AVI BioPharma, Inc. Antisense compositions and methods for modulating contact hypersensitivity or contact dermatitis
WO2010072228A1 (en) 2008-12-22 2010-07-01 Xigen S.A. Novel transporter constructs and transporter cargo conjugate molecules
US20120156138A1 (en) * 2009-04-14 2012-06-21 Smith Larry J Methods and Compositions for the Treatment of Medical Conditions Involving Cellular Reprogramming
US9296785B2 (en) 2009-04-17 2016-03-29 Wake Forest University Health Sciences IL-13 receptor binding peptides
US20110269665A1 (en) * 2009-06-26 2011-11-03 Avi Biopharma, Inc. Compound and method for treating myotonic dystrophy
ES2693459T3 (en) 2009-11-12 2018-12-11 The University Of Western Australia Antisense molecules and methods for the treatment of pathologies
JP5991922B2 (en) 2009-11-13 2016-09-14 サレプタ セラピューティクス, インコーポレイテッド Antisense antiviral compounds and methods for treating influenza virus infection
US20120309684A1 (en) * 2009-11-30 2012-12-06 Isis Innovation Limited Conjugates for delivery of biologically active compounds
JP5457813B2 (en) * 2009-12-16 2014-04-02 ルネサスエレクトロニクス株式会社 ADPLL circuit, semiconductor device and portable information device
WO2011084694A1 (en) 2009-12-17 2011-07-14 University Of Pittsburgh-Of The Commonwealth System Of Higher Education Stabilized stat3 decoy oligonucleotides and uses therefor
EP2545173A2 (en) * 2010-03-12 2013-01-16 Sarepta Therapeutics, Inc. Antisense modulation of nuclear hormone receptors
CA2805086C (en) 2010-05-13 2020-10-20 Sarepta Therapeutics, Inc. Antisense modulation of interleukins 17 and 23 signaling
US9050373B2 (en) 2010-05-13 2015-06-09 The Charlotte-Mecklenburg Hospital Authority Pharmaceutical compositions comprising antisense oligonucleotides and methods of using same
WO2011160653A1 (en) 2010-06-21 2011-12-29 Xigen S.A. Novel jnk inhibitor molecules
US8198429B2 (en) 2010-08-09 2012-06-12 Avi Biopharma, Inc. Antisense antiviral compounds and methods for treating a filovirus infection
US9150618B2 (en) 2010-10-14 2015-10-06 Xigen Inflammation Ltd. Use of cell-permeable peptide inhibitors of the JNK signal transduction pathway for the treatment of chronic or non-chronic inflammatory eye diseases
KR102339196B1 (en) 2011-05-05 2021-12-15 사렙타 쎄러퓨틱스, 인코퍼레이티드 Peptide Oligonucleotide Conjugates
EP2750715B1 (en) 2011-08-30 2018-10-31 The Regents of The University of California Identification of small molecules that enhance therapeutic exon skipping
WO2013091670A1 (en) 2011-12-21 2013-06-27 Xigen S.A. Novel jnk inhibitor molecules for treatment of various diseases
WO2014011177A1 (en) * 2012-07-12 2014-01-16 Smith Holdings, Llc Antisense p53 phosphorodiamidate morpholino composititons, methods and indications
EP3633035A1 (en) 2013-03-14 2020-04-08 Sarepta Therapeutics, Inc. Exon skipping compositions for treating muscular dystrophy
BR112015022998A2 (en) 2013-03-15 2017-11-14 Sarepta Therapeutics Inc improved compositions for treating muscular dystrophy
US9885040B2 (en) * 2013-04-12 2018-02-06 The Curators Of The University Of Missouri SMN2 element 1 antisense compositions and methods and uses thereof
WO2015197097A1 (en) 2014-06-26 2015-12-30 Xigen Inflammation Ltd. New use for jnk inhibitor molecules for treatment of various diseases
WO2014206427A1 (en) 2013-06-26 2014-12-31 Xigen Inflammation Ltd. New use of cell-permeable peptide inhibitors of the jnk signal transduction pathway for the treatment of various diseases
CA2903275A1 (en) 2013-06-26 2014-12-31 Xigen Inflammation Ltd. New use of cell-permeable peptide inhibitors of the jnk signal transduction pathway for the treatment of various diseases
CN108699555A (en) * 2015-10-09 2018-10-23 萨勒普塔医疗公司 Composition for treating Duchenne's dystrophy and associated disease and method
PL3554552T3 (en) 2016-12-19 2022-11-21 Sarepta Therapeutics, Inc. Exon skipping oligomer conjugates for muscular dystrophy
CN206351680U (en) * 2017-01-04 2017-07-25 上海蔚来汽车有限公司 Self-adapting adjusted positions plus Unlocking clamp
WO2019060522A2 (en) * 2017-09-22 2019-03-28 The Regents Of The University Of Colorado, A Body Corporate Thiomorpholino oligonucleotides for the treatment of muscular dystrophy
WO2019217682A1 (en) 2018-05-09 2019-11-14 Ohio State Innovation Foundation Cyclic cell-penetrating peptides with one or more hydrophobic residues
EP4021476A4 (en) * 2019-08-29 2023-10-11 AJK Biopharmaceutical, LLC Synthetic antimicrobial peptides
WO2021127650A1 (en) * 2019-12-19 2021-06-24 Entrada Therapeutics, Inc. Compositions for delivery of antisense compounds
US11987795B2 (en) 2020-11-24 2024-05-21 The Broad Institute, Inc. Methods of modulating SLC7A11 pre-mRNA transcripts for diseases and conditions associated with expression of SLC7A11
WO2023034515A2 (en) 2021-09-03 2023-03-09 Sarepta Therapeutics, Inc. Delivery of anitsense oligomers by mirror image peptides
CA3233242A1 (en) 2021-09-30 2023-04-06 Sarepta Therapeutics, Inc. Antisense oligonucleotides having one or more abasic units
WO2023070086A1 (en) 2021-10-22 2023-04-27 Sarepta Therapeutics, Inc. Morpholino oligomers for treatment of peripheral myelin protein 22 related diseases
WO2024064237A2 (en) 2022-09-21 2024-03-28 Sarepta Therapeutics, Inc. Dmd antisense oligonucleotide-mediated exon skipping efficiency

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001062297A1 (en) * 2000-02-14 2001-08-30 Cellgate, Inc. Compositions and methods for enhancing drug delivery across biological membranes and tissues
WO2003068942A2 (en) * 2002-02-13 2003-08-21 University Of Pittsburgh Of The Commonwealth System Of Higher Education Identification of peptides that facilitate uptake and cytoplasmic and/or nuclear transport of proteins, dna and viruses

Family Cites Families (111)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5185444A (en) 1985-03-15 1993-02-09 Anti-Gene Deveopment Group Uncharged morpolino-based polymers having phosphorous containing chiral intersubunit linkages
US5506337A (en) 1985-03-15 1996-04-09 Antivirals Inc. Morpholino-subunit combinatorial library and method
US5217866A (en) 1985-03-15 1993-06-08 Anti-Gene Development Group Polynucleotide assay reagent and method
US5034506A (en) 1985-03-15 1991-07-23 Anti-Gene Development Group Uncharged morpholino-based polymers having achiral intersubunit linkages
ATE171185T1 (en) 1985-03-15 1998-10-15 Antivirals Inc POLYNUCLEOTIDE IMMUNOTESTING AGENTS AND METHODS
US5521063A (en) 1985-03-15 1996-05-28 Antivirals Inc. Polynucleotide reagent containing chiral subunits and methods of use
US5166315A (en) 1989-12-20 1992-11-24 Anti-Gene Development Group Sequence-specific binding polymers for duplex nucleic acids
US5525465A (en) * 1987-10-28 1996-06-11 Howard Florey Institute Of Experimental Physiology And Medicine Oligonucleotide-polyamide conjugates and methods of production and applications of the same
US5087617A (en) * 1989-02-15 1992-02-11 Board Of Regents, The University Of Texas System Methods and compositions for treatment of cancer using oligonucleotides
US5378841A (en) 1989-12-20 1995-01-03 Antivirals Inc. Alpha-morpholino ribonucleoside derivatives and polymers thereof
US5652122A (en) * 1989-12-21 1997-07-29 Frankel; Alan Nucleic acids encoding and methods of making tat-derived transport polypeptides
DE69215722T3 (en) 1991-03-22 2001-03-08 Katsuro Tachibana Amplifiers for ultrasound therapy of diseases and liquid pharmaceutical compositions containing them
GB9209032D0 (en) * 1992-04-25 1992-06-10 Ciba Geigy Ag New peptide derivatives
CA2135642C (en) 1992-08-21 1999-12-14 James G. Barsoum Tat-derived transport polypeptides
PT690726E (en) * 1993-01-07 2002-05-31 Univ Jefferson C-MYC ANTI-SENSE INHIBITION TO MODIFY THE PROLIFERATION OF SMOOTH MUSCLE CELLS
GB9318288D0 (en) 1993-09-03 1993-10-20 Nycomed Imaging As Improvements in or relating to contrast agents
HUT74509A (en) 1993-09-09 1997-01-28 Schering Ag Active principles and gas containing microparticles, their use for realising active principles in ultrasonically controlled manner, and process for preparing them
GB9402867D0 (en) 1994-02-15 1994-04-06 Nycomed Imaging As Improvements in or relating to contrast agents
GB9417941D0 (en) 1994-09-06 1994-10-26 Nycomed Imaging As Improvements in or relating to contrast agents
US5648098A (en) 1995-10-17 1997-07-15 The Board Of Regents Of The University Of Nebraska Thrombolytic agents and methods of treatment for thrombosis
US6245747B1 (en) 1996-03-12 2001-06-12 The Board Of Regents Of The University Of Nebraska Targeted site specific antisense oligodeoxynucleotide delivery method
US5849727A (en) * 1996-06-28 1998-12-15 Board Of Regents Of The University Of Nebraska Compositions and methods for altering the biodistribution of biological agents
US6261537B1 (en) 1996-10-28 2001-07-17 Nycomed Imaging As Diagnostic/therapeutic agents having microbubbles coupled to one or more vectors
US6143276A (en) 1997-03-21 2000-11-07 Imarx Pharmaceutical Corp. Methods for delivering bioactive agents to regions of elevated temperatures
AU734827B2 (en) * 1997-05-21 2001-06-21 Board Of Trustees Of The Leland Stanford Junior University Composition and method for enhancing transport across biological membranes
EP0998577B1 (en) 1997-07-24 2004-10-27 Perseptive Biosystems, Inc. Conjugates of transporter peptides and nucleic acid analogs, and their use
ATE250940T1 (en) 1998-07-13 2003-10-15 Univ Nebraska TARGET DISHES SITE-SPECIFIC DRUG COMPOSITIONS AND USES
EP1109821A4 (en) * 1998-08-25 2002-04-03 Human Genome Sciences Inc 49 human secreted proteins
JP2002535015A (en) * 1999-01-29 2002-10-22 エイブイアイ バイオファーマ, インコーポレイテッド Non-invasive method for detecting target RNA
CA2365984A1 (en) * 1999-04-08 2000-10-19 Oasis Biosciences, Inc. Antisense oligonucleotides comprising universal and/or degenerate bases
DE60039601D1 (en) 1999-05-24 2008-09-04 Avi Biopharma Inc ANTISENSE AGAINST C-MYC FOR THE TREATMENT OF POLYCYSTIC KIDNEY DISEASE
US6303573B1 (en) * 1999-06-07 2001-10-16 The Burnham Institute Heart homing peptides and methods of using same
US7229961B2 (en) * 1999-08-24 2007-06-12 Cellgate, Inc. Compositions and methods for enhancing drug delivery across and into ocular tissues
US6593292B1 (en) * 1999-08-24 2003-07-15 Cellgate, Inc. Compositions and methods for enhancing drug delivery across and into epithelial tissues
US6669951B2 (en) * 1999-08-24 2003-12-30 Cellgate, Inc. Compositions and methods for enhancing drug delivery across and into epithelial tissues
EP1224261A1 (en) 1999-10-07 2002-07-24 Avi Biopharma, Inc. C-myc antisense-treated hematopoietic stem cell composition and method
CA2392685C (en) 1999-11-29 2011-02-22 Avi Biopharma, Inc. Antisense antibacterial method and composition
WO2001049775A2 (en) 2000-01-04 2001-07-12 Avi Biopharma, Inc. Antisense antibacterial cell division composition and method
US6559279B1 (en) * 2000-09-08 2003-05-06 Isis Pharmaceuticals, Inc. Process for preparing peptide derivatized oligomeric compounds
US20040170955A1 (en) * 2000-09-08 2004-09-02 Wadih Arap Human and mouse targeting peptides identified by phage display
EP1191097A1 (en) * 2000-09-21 2002-03-27 Leids Universitair Medisch Centrum Induction of exon skipping in eukaryotic cells
AU2002225714A1 (en) 2000-11-10 2002-05-21 The Regents Of The University Of California Il-17 receptor-like protein, uses thereof, and modulation of catabolic activity of il-17 cytokines on bone and cartilage
US7138238B2 (en) * 2001-02-06 2006-11-21 Auburn University Ligand sensor devices and uses thereof
US20030031655A1 (en) * 2001-02-08 2003-02-13 Sequitur, Inc. Methods of light activated release of ligands from endosomes
JP2005508832A (en) 2001-02-16 2005-04-07 セルゲイト, インコーポレイテッド Transporter with arginine part at intervals
US7456146B2 (en) * 2001-05-09 2008-11-25 Ghc Research Development Corporation Lytic peptide prodrugs
AT413185B (en) 2001-05-17 2005-12-15 Blum Gmbh Julius FURNITURE DRAWER
KR20040004629A (en) * 2001-05-17 2004-01-13 에이브이아이 바이오파마 인코포레이티드 Combined approach to treatment of cancer using a c-myc antisense oligomer
JP3735292B2 (en) * 2001-07-26 2006-01-18 三菱重工業株式会社 Dietary health foods and formulations
US6645974B2 (en) * 2001-07-31 2003-11-11 Merck & Co., Inc. Androgen receptor modulators and methods for use thereof
US20090075377A1 (en) * 2001-08-03 2009-03-19 Arbor Vita Corporation Molecular interactions in cells
US20030224353A1 (en) 2001-10-16 2003-12-04 Stein David A. Antisense antiviral agent and method for treating ssRNA viral infection
CA2469336C (en) * 2001-12-11 2013-06-11 The Board Of Trustees Of The Leland Stanford Junior University Guanidinium transport reagents and conjugates
US7482016B2 (en) * 2003-03-19 2009-01-27 The J. David Gladstone Institutes Immunogenic compositions comprising HIV-1 acetylated Tat polypeptides
WO2004097017A2 (en) 2003-04-29 2004-11-11 Avi Biopharma, Inc. Compositions for enhancing transport and antisense efficacy of nucleic acid analog into cells
MXPA06000347A (en) 2003-07-08 2006-03-28 Genentech Inc Il-17 a/f heterologous polypeptides and therapeutic uses thereof.
EP1927600A1 (en) 2003-08-07 2008-06-04 Zymogenetics, Inc. Homogeneous preparations of IL-28 and IL-29
US20050203041A1 (en) 2003-09-23 2005-09-15 Mourich Dan V. Antisense compound and method for selectively killing activated T cells
US20050222068A1 (en) * 2003-10-23 2005-10-06 Mourich Dan V Method and antisense composition for selective inhibition of HIV infection in hematopoietic cells
US7786151B2 (en) * 2004-01-09 2010-08-31 Kinopharma, Inc. Therapeutic composition of treating abnormal splicing caused by the excessive kinase induction
CA2553104A1 (en) 2004-01-23 2005-08-11 Avi Biopharma, Inc. Antisense oligomers and methods for inducing immune tolerance and immunosuppression
US20060078542A1 (en) * 2004-02-10 2006-04-13 Mah Cathryn S Gel-based delivery of recombinant adeno-associated virus vectors
US7402574B2 (en) 2004-03-12 2008-07-22 Avi Biopharma, Inc. Antisense composition and method for treating cancer
MXPA06012605A (en) 2004-05-04 2006-12-15 Nastech Pharm Co Compositions and methods for enhancing delivery of nucleic acids into cells and for modifying expression of target genes in cells.
US20050288246A1 (en) 2004-05-24 2005-12-29 Iversen Patrick L Peptide conjugated, inosine-substituted antisense oligomer compound and method
WO2005117928A1 (en) * 2004-05-30 2005-12-15 Cemines, Inc. Compositions and methods for the treatment of skin cancer
EP2206781B1 (en) 2004-06-28 2015-12-02 The University Of Western Australia Antisense oligonucleotides for inducing exon skipping and methods of use thereof
CA2572151A1 (en) * 2004-06-30 2006-08-24 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a non-phosphate backbone linkage
EP2801366A3 (en) * 2004-09-02 2015-04-29 Cognosci, Inc. Improved apo E analogs and methods for their use
WO2006031996A2 (en) * 2004-09-14 2006-03-23 University Of Pittsburgh Of The Commonwealth System Of Higher Education Targeting viruses using a modified sindbis glycoprotein
US8129352B2 (en) * 2004-09-16 2012-03-06 Avi Biopharma, Inc. Antisense antiviral compound and method for treating ssRNA viral infection
US8357664B2 (en) * 2004-10-26 2013-01-22 Avi Biopharma, Inc. Antisense antiviral compound and method for treating influenza viral infection
US7524829B2 (en) 2004-11-01 2009-04-28 Avi Biopharma, Inc. Antisense antiviral compounds and methods for treating a filovirus infection
NZ538097A (en) 2005-02-07 2006-07-28 Ovita Ltd Method and compositions for improving wound healing
WO2006086667A2 (en) * 2005-02-09 2006-08-17 Avi Bio Pharma, Inc. Antisense composition and method for treating muscle atrophy
EP2322553A3 (en) 2005-02-14 2011-11-16 Wyeth LLC Interleukin-17F antibodies and other IL-17F signaling antagonists and uses therefor
JP2008539209A (en) * 2005-04-26 2008-11-13 カリヨン−シーティーティー リミテッド Diagnostic and therapeutic agents
US7790694B2 (en) * 2005-07-13 2010-09-07 Avi Biopharma Inc. Antisense antibacterial method and compound
WO2007009094A2 (en) 2005-07-13 2007-01-18 Avi Biopharma, Inc. Antisense antibacterial method and compound
US8067571B2 (en) * 2005-07-13 2011-11-29 Avi Biopharma, Inc. Antibacterial antisense oligonucleotide and method
US8524676B2 (en) * 2005-09-08 2013-09-03 Sarepta Therapeutics, Inc. Method for treating enterovirus or rhinovirus infection using antisense antiviral compounds
CA2621964A1 (en) 2005-09-08 2007-03-15 Avi Biopharma, Inc. Antisense antiviral compound and method for treating picornavirus infection
CA2624081C (en) * 2005-09-29 2014-09-16 Medimmune, Inc. Method of identifying membrane ig specific antibodies and use thereof for targeting immunoglobulin-producing precursor cells
US8501704B2 (en) 2005-11-08 2013-08-06 Sarepta Therapeutics, Inc. Immunosuppression compound and treatment method
AU2006311586A1 (en) 2005-11-08 2007-05-18 Avi Biopharma, Inc. Immunosuppression compound and treatment method
WO2007103529A2 (en) 2006-03-07 2007-09-13 Avi Biopharma, Inc. Antisense antiviral compound and method for treating arenavirus infection
LT2024499T (en) * 2006-05-10 2018-02-26 Sarepta Therapeutics, Inc. Oligonucleotide analogs having cationic intersubunit linkages
US8785407B2 (en) * 2006-05-10 2014-07-22 Sarepta Therapeutics, Inc. Antisense antiviral agent and method for treating ssRNA viral infection
AU2006345724B2 (en) 2006-06-30 2013-11-21 Lakewood-Amedex, Inc. Compositions and methods for the treatment of muscle wasting
NZ574807A (en) * 2006-08-11 2011-01-28 Prosensa Technologies Bv Methods and means for treating dna repeat instability associated genetic disorders
US20080199961A1 (en) 2006-08-25 2008-08-21 Avi Biopharma, Inc. ANTISENSE COMPOSITION AND METHOD FOR INHIBITION OF miRNA BIOGENESIS
US20080267978A1 (en) * 2006-08-28 2008-10-30 Mary Zutter Anti-angiogenic targets for cancer therapy
CA2981308C (en) * 2006-09-21 2020-12-22 University Of Rochester Compositions and methods related to protein displacement therapy for myotonic dystrophy
FR2908999B1 (en) * 2006-11-29 2012-04-27 Biomerieux Sa NOVEL DRUG FOR THE INHIBITION, PREVENTION OR TREATMENT OF RHEUMATOID ARTHRITIS.
EP1938802A1 (en) 2006-12-22 2008-07-02 INSERM (Institut National de la Santé et de la Recherche Médicale) Interfering RNAs targeting pro-inflammatory cytokines
US20100016215A1 (en) * 2007-06-29 2010-01-21 Avi Biopharma, Inc. Compound and method for treating myotonic dystrophy
EP2170363B1 (en) 2007-06-29 2018-08-08 Sarepta Therapeutics, Inc. Tissue specific peptide conjugates and methods
WO2009026412A1 (en) 2007-08-21 2009-02-26 Children's Medical Center Corporation Treatment of airway hyperreactivity
MX2010006925A (en) 2007-12-20 2011-05-02 Angiochem Inc Polypeptide-nucleic acid conjugates and uses thereof.
US7989608B2 (en) * 2007-12-28 2011-08-02 Avi Biopharma Inc. Immunomodulatory agents and methods of use
WO2009144481A2 (en) 2008-05-30 2009-12-03 Isis Innovation Limited Conjugates for delivery of biologically active compounds
SI3133160T1 (en) 2008-10-24 2019-05-31 Sarepta Therapeutics, Inc. Exon skipping compositions for dmd
CN108997498A (en) 2008-12-09 2018-12-14 霍夫曼-拉罗奇有限公司 Anti- PD-L1 antibody and they be used to enhance the purposes of T cell function
EP2376633A1 (en) * 2008-12-17 2011-10-19 AVI BioPharma, Inc. Antisense compositions and methods for modulating contact hypersensitivity or contact dermatitis
CA2754826A1 (en) 2009-03-06 2010-09-10 Mount Sinai School Of Medicine Live attenuated influenza virus vaccines comprising microrna response elements
US20110269665A1 (en) 2009-06-26 2011-11-03 Avi Biopharma, Inc. Compound and method for treating myotonic dystrophy
WO2011049603A1 (en) 2009-10-22 2011-04-28 Dana-Farber Cancer Institute, Inc. Biomarkers to identify hiv-specific t-cell subsets
JP5991922B2 (en) 2009-11-13 2016-09-14 サレプタ セラピューティクス, インコーポレイテッド Antisense antiviral compounds and methods for treating influenza virus infection
EP2545173A2 (en) 2010-03-12 2013-01-16 Sarepta Therapeutics, Inc. Antisense modulation of nuclear hormone receptors
CA2805086C (en) * 2010-05-13 2020-10-20 Sarepta Therapeutics, Inc. Antisense modulation of interleukins 17 and 23 signaling
US9161948B2 (en) * 2011-05-05 2015-10-20 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001062297A1 (en) * 2000-02-14 2001-08-30 Cellgate, Inc. Compositions and methods for enhancing drug delivery across biological membranes and tissues
WO2003068942A2 (en) * 2002-02-13 2003-08-21 University Of Pittsburgh Of The Commonwealth System Of Higher Education Identification of peptides that facilitate uptake and cytoplasmic and/or nuclear transport of proteins, dna and viruses

Non-Patent Citations (7)

* Cited by examiner, † Cited by third party
Title
CHEN CHANG-PO ET AL: "A concise method for the preparation of peptide and arginine-rich peptide-conjugated antisense oligonucleotide." BIOCONJUGATE CHEMISTRY. 2003 MAY-JUN, vol. 14, no. 3, May 2003 (2003-05), pages 532-538, XP002314110 ISSN: 1043-1802 *
ERIKSSON MAGDALENA ET AL: "Cell permeabilization and uptake of antisense peptide-peptide nucleic acid (PNA) into Escherichia coli." THE JOURNAL OF BIOLOGICAL CHEMISTRY. 1 MAR 2002, vol. 277, no. 9, 1 March 2002 (2002-03-01), pages 7144-7147, XP002314499 ISSN: 0021-9258 *
GHOSH C ET AL: "INTRACELLULAR DELIVERY STRATEGIES FOR ANTISENSE PHOSPHORODIAMIDATE MORPHOLINO OLIGOMERS" ANTISENSE & NUCLEIC ACID DRUG DEVELOPMENT, MARY ANN LIEBERT, INC., NEW YORK, US, vol. 10, no. 4, August 2000 (2000-08), pages 263-274, XP001147441 ISSN: 1087-2906 *
IVERSEN P L: "Phosphorodiamidate morpholino oligomers: favorable properties for sequence-specific gene inactivation." CURRENT OPINION IN MOLECULAR THERAPEUTICS. JUN 2001, vol. 3, no. 3, June 2001 (2001-06), pages 235-238, XP009042729 ISSN: 1464-8431 *
MOULTON HONG M ET AL: "HIV Tat peptide enhances cellular delivery of antisense morpholino oligomers." ANTISENSE & NUCLEIC ACID DRUG DEVELOPMENT. FEB 2003, vol. 13, no. 1, February 2003 (2003-02), pages 31-43, XP009042731 ISSN: 1087-2906 *
RICHARD JEAN PHILIPPE ET AL: "Cell-penetrating peptides. A reevaluation of the mechanism of cellular uptake." THE JOURNAL OF BIOLOGICAL CHEMISTRY. 3 JAN 2003, vol. 278, no. 1, 3 January 2003 (2003-01-03), pages 585-590, XP002314498 ISSN: 0021-9258 *
ZUBIN E M ET AL: "Oligonucleotide-peptide conjugates as potential antisense agents" FEBS LETTERS, ELSEVIER SCIENCE PUBLISHERS, AMSTERDAM, NL, vol. 456, no. 1, 30 July 1999 (1999-07-30), pages 59-62, XP004260038 ISSN: 0014-5793 *

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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US9572899B2 (en) 2003-04-29 2017-02-21 Avi Biopharma, Inc. Compositions for enhancing transport of molecules into cells
US8877725B2 (en) 2004-05-24 2014-11-04 Sarepta Therapeutics, Inc. Peptide conjugated, inosine-substituted antisense oligomer compound and method
EP1765414A2 (en) * 2004-05-24 2007-03-28 Avi Biopharma, Inc. Peptide conjugated, inosine-substituted antisense oligomer compound and method
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US9534220B2 (en) 2004-07-02 2017-01-03 Sarepta Therapeutics, Inc. Antisense antibacterial method and compound
US10006031B2 (en) 2005-02-09 2018-06-26 Sarepta Therapeutics, Inc. Antisense composition and method for treating muscle atrophy
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EP1915161A2 (en) * 2005-07-13 2008-04-30 Avi Biopharma, Inc. Antisense antibacterial method and compound
EP1915161A4 (en) * 2005-07-13 2011-06-15 Avi Biopharma Inc Antisense antibacterial method and compound
US8067571B2 (en) 2005-07-13 2011-11-29 Avi Biopharma, Inc. Antibacterial antisense oligonucleotide and method
US10144762B2 (en) 2005-07-13 2018-12-04 Sarepta Therapeutics, Inc. Antibacterial antisense oligonucleotide and method
US9249243B2 (en) 2005-07-13 2016-02-02 Sarepta Therapeutics, Inc. Antibacterial antisense oligonucleotide and method
US8536147B2 (en) 2005-07-13 2013-09-17 Sarepta Therapeutics, Inc. Antibacterial antisense oligonucleotide and method
US9499583B2 (en) 2005-07-13 2016-11-22 Sarepta Therapeutics, Inc. Antibacterial antisense oligonucleotide and method
EP2049143A1 (en) * 2006-07-13 2009-04-22 Avi Biopharma, Inc. Improved antibacterial antisense oligonucleotide and method
EP2049143A4 (en) * 2006-07-13 2010-11-17 Avi Biopharma Inc Improved antibacterial antisense oligonucleotide and method
US11236329B2 (en) 2007-06-29 2022-02-01 Sarepta Therapeutics, Inc. Compound and method for treating myotonic dystrophy
US8741863B2 (en) 2007-06-29 2014-06-03 Sarepta Therapeutics, Inc. Compound and method for treating myotonic dystrophy
US20120190630A1 (en) * 2009-02-27 2012-07-26 The Administrators Of The Tulane Educational Fund Amino acid-based compounds, their methods of use, and methods of screening
US8603966B2 (en) * 2009-02-27 2013-12-10 The Administrators Of The Tulane Educational Fund Amino acid-based compounds, their methods of use, and methods of screening
US8999675B2 (en) 2009-08-31 2015-04-07 Gen-Probe Incorporated Dengue virus assay
US9469664B2 (en) 2010-05-28 2016-10-18 Sarepta Therapeutics, Inc. Oligonucleotide analogues having modified intersubunit linkages and/or terminal groups
US10760078B2 (en) 2010-05-28 2020-09-01 Sarepta Therapeutics, Inc. Oligonucleotide analogues having modified intersubunit linkages and/or terminal groups
US10202602B2 (en) 2010-05-28 2019-02-12 Sarepta Therapeutics, Inc. Oligonucleotide analogues having modified intersubunit linkages and/or terminal groups
US11072793B2 (en) 2010-09-03 2021-07-27 Sarepta Therapeutics, Inc. DsRNA molecules comprising oligonucleotide analogs having modified intersubunit linkages and/or terminal groups
US10017763B2 (en) 2010-09-03 2018-07-10 Sarepta Therapeutics, Inc. dsRNA molecules comprising oligonucleotide analogs having modified intersubunit linkages and/or terminal groups
US11732259B2 (en) 2011-05-05 2023-08-22 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US9862946B2 (en) 2011-05-05 2018-01-09 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US10487326B2 (en) 2011-05-05 2019-11-26 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US11225662B2 (en) 2011-05-05 2022-01-18 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US9161948B2 (en) 2011-05-05 2015-10-20 Sarepta Therapeutics, Inc. Peptide oligonucleotide conjugates
US10106795B2 (en) 2011-10-04 2018-10-23 Royal Holloway And Bedford New College Oligomers
US10421969B2 (en) 2011-10-04 2019-09-24 Royal Holloway And Bedford New College Oligomers
US10662431B2 (en) 2011-10-04 2020-05-26 Royal Holloway And Bedford New College Oligomers
US10947536B2 (en) 2011-10-04 2021-03-16 Royal Holloway And Bedford New College Oligomers
US10344281B2 (en) 2011-11-18 2019-07-09 Sarepta Therapeutics, Inc. Functionally-modified oligonucleotides and subunits thereof
US9278987B2 (en) 2011-11-18 2016-03-08 Sarepta Therapeutics, Inc. Functionally-modified oligonucleotides and subunits thereof
US9790499B2 (en) 2011-11-18 2017-10-17 Sarepta Therapeutics, Inc. Functionally-modified oligonucleotides and subunits thereof
US11208655B2 (en) 2011-11-18 2021-12-28 Sarepta Therapeutics, Inc. Functionally-modified oligonucleotides and subunits thereof
US9920085B2 (en) 2012-03-20 2018-03-20 Sarepta Therapeutics, Inc. Boronic acid conjugates of oligonucleotide analogues
EP3620178A2 (en) 2014-05-16 2020-03-11 Oregon State University Antisense antibacterial compounds and methods
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US11103587B2 (en) 2014-05-23 2021-08-31 Genzyme Corporation Multiple oligonucleotide moieties on peptide carrier
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US11015200B2 (en) 2015-03-18 2021-05-25 Sarepta Therapeutics, Inc. Antisense-induced exon exclusion in myostatin
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WO2017184529A1 (en) 2016-04-18 2017-10-26 Sarepta Therapeutics, Inc. Antisense oligomers and methods of using the same for treating diseases associated with the acid alpha-glucosidase gene
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WO2019030298A1 (en) 2017-08-08 2019-02-14 Almirall, S.A. Novel compounds activating the nrf2 pathway
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WO2020115494A1 (en) * 2018-12-07 2020-06-11 Oxford University Innovation Limited Linkers
WO2020123574A1 (en) 2018-12-13 2020-06-18 Sarepta Therapeutics, Inc. Exon skipping oligomer conjugates for muscular dystrophy
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WO2024097822A1 (en) 2022-11-02 2024-05-10 Sarepta Therapeutics, Inc. Formulation of an antisense oligomer conjugate

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