Claims
- 1. A tRNA analogue, comprising:
(a) a tRNA; (b) an amino acid moiety which acts as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (c) a reactive or activatible moiety near or within the anticodon stem-loop that can mediate the stable coupling of the tRNA analogue to mRNA.
- 2. The tRNA analogue of claim 1, wherein the tRNA analogue is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of a puromycin-substituted tRNA.
- 3 The tRNA analogue of claim 1, wherein the tRNA is yeast tRNAphe.
- 4. The tRNA analogue of claim 3, wherein the 3′ terminal nucleotide of the yeast tRNAphe has been replaced by 3′-amino-3′-deoxyadenosine or puromycin.
- 5. A tRNA analogue which is a tRNA in which the 3′ terminal nucleotide is replaced by 3′-amino-3′-deoxyadenosine and then linked to an amino acid moiety or replaced by puromycin and in which the anticodon loop comprises a reactive or activatible moiety that can mediate covalent coupling of the tRNA analogue to mRNA.
- 6. The tRNA analogue of claim 5, wherein the tRNA is yeast tRNAphe.
- 7. The tRNA analogue of claim 5, wherein the reactive or activatible moiety is a modified base near or within the tRNA stem loop.
- 8. The tRNA analogue of claim 7 wherein the reactive or activatible moiety is a naturally modified guanine base at position 37.
- 9. A polypeptide-tRNA analogue-mRNA fusion, comprising:
(a) a polypeptide; (b) a tRNA analogue comprising:
(i) a tRNA; (ii) an amino acid moiety which can act as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (iii) a reactive or activatible moiety near or within the anticodon stem-loom that can mediate the stable coupling of the tRNA analogue to mRNA; and (c) mRNA which encodes the polypeptide of (a), wherein the tRNA analogue is: located between the polypeptide and the mRNA; linked to the polypeptide by a stable bond between the terminal amino acid residue of the polypeptide and the amino acid moiety and, linked to the mRNA by crosslinks between a reactive or activatible moiety of the tRNA analogue and the mRNA.
- 10. The polypeptide-tRNA analogue-mRNA fusion of claim 9, wherein the tRNA analogue is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of puromycin.
- 11. The polypeptide-tRNA analogue-mRNA fusion of claim 9, wherein the tRNA is yeast tRNAphe.
- 12. The fusion of claim 11, wherein the tRNA is yeast tRNAphe in which the 3′ terminal nucleotide has been replaced by 3′-amino-3′-deoxyadenosine or puromycin.
- 13. A polypeptide-tRNA analogue-mRNA fusion, comprising:
(a) a polypeptide; (b) a tRNA analogue comprising:
(i) a tRNA; (ii) an amino acid moiety which can act as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (iii) a reactive or activatible moiety near or within the anticodon stem-loop that can mediate the stable coupling of the tRNA analogue to mRNA; and (c) mRNA which encodes the polypeptide of (a), wherein the tRNA analogue is: located between the polypeptide and the mRNA; linked to the polypeptide by a stable bond between the terminal amino acid residue of the polypeptide and the amino acid moiety; and linked to the mRNA by the action of UV irradiation that produces a crosslink between a modified base near or within the tRNA stem loop and the mRNA.
- 14. The fusion of claim 13, wherein the tRNA analogue is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of puromycin-substituted tRNA.
- 15. The fusion of claim 13, wherein the tRNA is yeast tRNAphe in which the 3′ terminal nucleotide has been replaced by 3′-amino-3′-deoxyadenosine or puromycin.
- 16. A diverse library of encoded polypeptides, wherein the encoded polypeptides comprise:
(a) a polypeptide; (b) a tRNA analogue comprising:
(i) a tRNA; (ii) an amino acid moiety which can act as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (iii) a reactive or activatible moiety near or within the anticodon stem-loop that can mediate the stable coupling of the tRNA analogue to mRNA; and (c) mRNA which encodes the polypeptide of (a), wherein the tRNA analogue is: located between the polypeptide and the mRNA; linked to the polypeptide by a stable bond between the terminal amino acid residue of the polypeptide and the amino acid moiety; and linked to the mRNA by crosslinks between a reactive or activatible moiety of the tRNA analogue and the mRNA.
- 17. The diverse library of claim 16, wherein the tRNA analogue is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of puromycin-substituted tRNA.
- 18. The diverse library of claim 17, wherein the tRNA is yeast tRNAphe.
- 19. The library of claim 18, wherein the 3′ terminal nucleotide of yeast tRNAphe has been replaced by 3′-amino-3′-deoxyadenosine or puromycin.
- 20. A method of producing a diverse library of encoded polypeptides, which comprises polypeptide-tRNA analogue-mRNA fusions, comprising the steps of:
(a) combining:
(i) mRNAs which encode polypeptides; (ii) tRNA analogues, wherein each tRNA analogue comprises:
(a) a tRNA; (b) an amino acid moiety which can act as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (c) a reactive or activatible moiety near or within the anticodon stem-loop that can mediate the stable coupling of the tRNA analogue to mRNA; and (iii) an appropriate in vitro translation mixture, thereby producing a combination; (b) maintaining the combination under conditions appropriate for translation of the mRNAs to produce the encoded polypeptides and formation of a stable amino acid-tRNA analogue bond between the terminal amino acid residue of a polypeptide produced and the amino acid moiety present in the tRNA, to form polypeptide-tRNA analogue fusions, thereby producing a mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusions; and (c) exposing the mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusions to conditions which favor the crosslinking of the tRNA analogue and the mRNA which encodes the polypeptide of the polypeptide-tRNA analogue fusion, whereby polypeptide-tRNA analogue-mRNA fusions are produced, thereby producing a diverse library of encoded polypeptides.
- 21. The method of claim 20, wherein the tRNA analogue is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of puromycin-substituted tRNA.
- 22. The method of claim 20, wherein the tRNA is yeast tRNAphe.
- 23. The method of claim 20, wherein the 3′ terminal nucleotide of yeast tRNAphe has been replaced with 3′-amino-3′-deoxyadenosine or puromycin and the conditions which favor crosslinking include mild ultraviolet irradiation.
- 24. A method of identifying members of a diverse library of encoded polypeptides which exhibit a desired activity, wherein members are polypeptide-tRNA analogue-mRNA fusions, comprising the steps of:
(a) producing a diverse library of encoded polypeptides which comprises polypeptide tRNA analogue-mRNA fusions by:
(i) combining:
(1) mRNAs which encode polypeptides; (2) tRNA analogues, wherein each tRNA analogue comprises:
(a) a tRNA; (b) an amino acid moiety which can act as an acceptor substrate, but not as a donor substrate, for ribosome-directed peptidyl transfer; and (c) a reactive or activatible moiety near or within the anticodon stem-loop that can mediate the covalent coupling of the tRNA analogue to mRNA; and (3) an appropriate in vitro translation mixture, thereby producing a combination; (ii) maintaining the combination under conditions appropriate for translation of the mRNAs to produce the encoded polypeptides and formation of a stable amino acid-tRNA analogue bond between the terminal amino acid residue of a polypeptide produced and the amino acid moiety present in the tRNA analogue, to form polypeptide-tRNA analogue fusions, thereby producing a mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusions; and (iii) exposing the mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusions to conditions which favor the crosslinking the tRNA analogue and the mRNA which encodes the polypeptide of the polypeptide-tRNA analogue fusion, whereby polypeptide-tRNA analogue-mRNA fusions are produced, thereby producing a diverse library of encoded polypeptides; (b) enriching the diverse library of encoded polypeptides for members which exhibit a desired activity, thereby producing an enriched diverse library comprised of polypeptide-tRNA analogue-mRNA fusions; (c) amplifying the enriched diverse library by:
(i) reverse transcribing the mRNA components of the fusions, thereby producing the corresponding cDNA; (ii) amplifying and transcribing in vitro the corresponding cDNA, thereby producing a pool of amplified, enriched mRNA from the corresponding cDNA; (iii) combining the pool of amplified, enriched mRNA with an appropriate in vitro translation mixture and tRNA analogues of (a)(i)(2), thereby producing a combination; (iv) maintaining the combination under conditions appropriate for translation of the mRNA to produce the encoded polypeptides and formation of a stable amino acid-tRNA analogue bond between the terminal amino acid residue of a polypeptide produced and the amino acid moiety present in the tRNA analogue, to form polypeptide-tRNA analogue fusions, thereby producing an amplified enriched mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusion; and (v) exposing the amplified enriched mixture which contains stalled ribosomes that contain polypeptide-tRNA analogue fusions to conditions which favor crosslinking of the tRNA analogue and the mRNA which encodes the polypeptide of the polypeptide-tRNA analogue fusion; (d) repeating steps (b)-(c) as necessary until members which exhibit the desired activity are present in sufficient number to be detected; and (e) detecting members which exhibit the desired activity, thereby identifying members which exhibit the desired activity.
- 25. The method of claim 24, wherein the polypeptide-tRNA analogue-mRNA fusion is a 3′-amino-3′-deoxyadenosine-substituted tRNA or puromycin-substituted tRNA and the amino acid moiety is any amino acid or the methoxytyrosine moiety of puromycin.
- 26. The method of claim 25, wherein in the polypeptide-tRNA analogue-mRNA fusion, the tRNA is yeast tRNAphe.
- 27. The method of claim 26, wherein in the yeast tRNAphe, the 3′ terminal nucleotide has been replaced by 3′-amino-3′-deoxyadenosine or puromycin.
- 28. A member of a diverse library of encoded polypeptides which exhibits a desired activity, identified by the method of claim 24.
- 29. A polypeptide fragment of a member of a diverse library of encoded polypeptides, wherein the member exhibits a desired activity and is identified by the method of claim 24.
- 30. A tRNA analogue-mRNA fragment of a member of a diverse library of encoded polypeptides, wherein the member exhibits a desired activity and is identified by the method of claim 24.
RELATED APPLICATIONS
[0001] This application is a continuation of U.S. application Ser. No. 09/291,704, filed Apr. 14, 1999, which claims the benefit of U.S. Provisional Application No. 60/082,252, filed Apr. 17, 1998. The entire teachings of the above applications are incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60082252 |
Apr 1998 |
US |
Continuations (1)
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Number |
Date |
Country |
| Parent |
09291704 |
Apr 1999 |
US |
| Child |
10176091 |
Jun 2002 |
US |