Claims
- 1. A directed-evolution method of generating an enhanced folding variant of a target polypeptide, comprising:
(a) mutating a polynucleotide encoding the polypeptide of interest to generate a library of mutated polynucleotides, (b) linking the mutated polynucleotides to a polynucleotide encoding a folding interference domain to form a library of fusion protein constructs, (c) expressing the fusion proteins of the library, and (d) selecting fusion proteins that display optimal folding activity in relation to a fusion protein comprising the wild type polypeptide and the folding interference domain, thereby identifying polypeptide mutants with enhanced folding activity.
- 2. The method of claim 1, further comprising carrying out one or more subsequent rounds of directed evolution on a fusion protein construct encoding an initially selected fusion protein that display optimal folding activity, and selecting fusion proteins therefrom with optimal folding activity relative to the folding activity of the initially selected fusion protein, thereby identifying polypeptides with further enhanced folding activity.
- 3. The method of claim 1, wherein folding activity is determined by measuring folding kinetics.
- 4. The method of claim 1, wherein folding activity is determined by measuring resistance to denaturation by urea.
- 5. The method of claim 1, wherein the folding activity of the fusion protein is determined by measuring a biological activity of the target polypeptide.
- 6. The method of claim 1, wherein the target polypeptide is a fluorescent protein and the biological activity is fluorescence.
- 7. The method of claim 1, wherein the target polypeptide is a chromophoric protein and the biological activity is color.
- 8. The method of claim 6, wherein the fluorescent protein is selected from the group consisting of Aequorea victoria Green Fluorescent Protein and a fluorescent protein having a structure with a root mean square deviation of less than 5 Angstroms from the 11-stranded beta-barrel component of the Aequorea victoria Green Fluorescent Protein structure MMDB Id: 5742.
- 9. An enhanced folding variant of a fluorescent protein generated by the method of claim 1.
- 10. The enhanced folding variant of claim 9, wherein the fluorescent protein is characterized by a structure having a root mean square deviation of less than 5 Angstroms from the 11-stranded beta-barrel component of the Aequorea victoria Green Fluorescent Protein structure MMDB Id: 5742.
- 11. The enhanced folding variant of claim 9, wherein the fluorescent protein is selected from the group consisting of Aequorea fluorescent proteins and Discosoma fluorescent proteins.
- 12. The enhanced folding variant of claim 9, wherein the fluorescent protein is Aequorea victoria Green Fluorescent Protein.
- 13. The enhanced folding variant of claim 9, wherein the fluorescent protein is a red fluorescent protein from a Discosoma species.
- 14. The enhanced folding variant of claim 9, wherein the fluorescent protein is a Anthozoan fluorescent protein.
- 15. The enhanced folding variant of claim 9, wherein the fluorescent protein is selected from the group consisting of a fluorescent protein from Trachyphyllia geoffroyi and Anemonia sulcata.
- 16. An enhanced folding variant of a chromophoric protein generated by the method of claim 1.
- 17. The enhanced folding variant of claim 9, wherein the fluorescent protein has the amino acid sequence of SEQ ID NO: 2.
- 18. The enhanced folding variant of claim 9, wherein the fluorescent protein has the amino acid sequence of SEQ ID NO: 4.
- 19. The method of claim 1, wherein the target polypeptide is a reporter polypeptide.
- 20. The method of claim 1, wherein the fusion protein further comprises a reporter molecule that has the reporter activity.
- 21. The method of claim 1, wherein the reporter activity is selected from the group consisting of a fluorescent signal or antibiotic resistance.
- 22. The method of claim 1, wherein the poorly folding domain is a ferritin domain.
- 23. The method of claim 1, wherein the fusion protein comprises a target polypeptide linked to the poorly folding domain by a linker.
- 24. The method of claim 23, wherein a reporter molecule is linked to the fusion protein.
- 25. The method of claim 1, wherein the folding interference domain is inserted into permissive sites of the target polypeptide.
- 26. The method of claim 1, wherein the target polypeptide is a green fluorescent protein that has at least 80% identity when aligned for maxim correspondence to SEQ ID NO:5 or SEQ ID NO. 2, and has fluorescent activity.
- 27. A method of enhancing folding of a polypeptide comprising multiple domains, the method comprising:
(a) joining a first domain of the polypeptide to a poorly folding domain, to form a fusion protein; (b) mutating the first domain; (c) detecting an increase in the amount of activity generated by a first mutated fusion protein in comparison to a fusion protein comprising the wild type first domain and the poorly folding polypeptide domain, thereby identifying a first domain with enhanced folding; (d) joining a second domain of the polypeptide to the first mutated fusion protein to form a second fusion protein; (e) mutating the second domain; and (f) detecting an increase in the amount of activity generated by a second mutated fusion protein in comparison to a fusion protein comprising the wild type second domain and the first mutated fusion protein, thereby identifying a target polypeptide with multiple domains that have enhanced folding.
- 28. A green fluorescent protein that has:
(a) at least 80% identity to SEQ ID NO:1 (b) at least one amino acid substitution selected from the group consisting of a substitution at position 30 that is an arginine or a conservative variant of arginine; a substitution at position 39 that is an asparagine or a conservative variant of asparagine; a substitution at position 105 that is a threonine or a conservative variant of threonine; a substitution at position 171 that is a valine; and a substitution at position 206 that is a valine; wherein the positions are determined in alignment for maximal correspondence with SEQ ID NO:1; and (c) measurable fluorescence activity.
- 29. A green fluorescent protein of claim 28, further comprising a phenylalanine substitution at position 145.
- 30. A green fluorescent protein of claim 28, wherein the amino acid substitution is selected from the group consisting of an arginine substitution at position 30; an asparagine substitution at position 39; a threonine substitution at position 105; a valine substitution at position 171; and a valine substitution at position 206.
- 31. A green fluorescent protein of claim 28, wherein the substitution is an arginine at position 30.
- 32. A green fluorescent protein of claim 28, wherein the substitution is an asparagine at position 39.
- 33. A green fluorescent protein of claim 28, wherein the substitution is a threonine at position 105.
- 34. A green fluorescent protein of claim 28, wherein the substitution is a phenylalanine at position 145.
- 35. A green fluorescent protein of claim 28, wherein the substitution is a valine at position 171.
- 36. A green fluorescent protein of claim 28, wherein the substitution is a valine at position 206.
- 37. A green fluorescent protein of claim 28, wherein the green fluorescent protein comprises two substitutions selected from the group set forth in claim 28.
- 38. A green fluorescent protein of claim 28, wherein the green fluorescent protein comprises three substitutions selected from the group set forth in claim 28.
- 39. A green fluorescent protein of claim 28, wherein the green fluorescent protein comprises four substitutions selected from the group set forth in claim 28.
- 40. A green fluorescent protein of claim 28, wherein the green fluorescent protein comprises five substitutions selected from the group set forth in claim 28.
- 41. A green fluorescent protein of claim 40, wherein the five substitutions are an arginine at position 30, an asparagine at position 29, a threonine at position 105, a valine at position 171, and a valine at position 206.
- 42. A green fluorescent protein of claim 41, wherein the green fluorescent protein further comprises a sixth substitution that is a phenylalanine at position 145.
- 43. A green fluorescent protein of claim 42, further comprising a mutation selected from the group consisting of F99S, M153T, and V163A.
- 44. A green fluorescent protein of claim 42, further comprising mutations F99S, M153T and V163A.
- 45. A green fluorescent protein of claim 28, wherein the protein is cyclized.
- 46. An isolated nucleic acid encoding a green fluorescent protein that has:
(a) at least 80% identity to SEQ ID NO:1 (b) at least one amino acid substitution selected from the group consisting of a substitution at position 30 that is an arginine or a conservative variant of arginine; a substitution at position 39 that is an asparagine or a conservative variant of asparagine; a substitution at position 105 that is a threonine or a conservative variant of threonine; a substitution at position 171 that is a valine; and a substitution at position 206 that is a valine; wherein the positions are determined in alignment for maximal correspondence with SEQ ID NO:1; and (c) measurable fluorescence activity.
- 47. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein having at least one amino acid substitution selected from the group consisting of an arginine substitution at position 30; an asparagine substitution at position 39; a threonine substitution at position 105; a phenylalanine substitution at position 145; a valine substitution at position 171; and a valine substitution at position 206.
- 48. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has an arginine substitution at position 30.
- 49. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has an asparagine substitution at position 39.
- 50. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has a threonine substitution at position 105.
- 51. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has a phenylalanine substitution at position 145.
- 52. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has a valine substitution at position 171.
- 53. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has a valine substitution at position 206.
- 54. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has at least two substitutions selected from the group set forth in claim 46.
- 55. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has at least three substitutions selected from the group set forth in claim 46.
- 56. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has at least four substitutions selected from the group set forth in claim 46.
- 57. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has at least five substitutions selected from the group set forth in claim 46.
- 58. An isolated nucleic acid of claim 46, wherein the nucleic acid encodes a green fluorescent protein that has at least six substitutions selected from the group set forth in claim 46.
- 59. An isolated nucleic acid of claim 46, wherein the six substitutions are an arginine at position 30, an asparagine at position 29, a threonine at position 105, a phenylalanine at position 145, a valine at position 171, and a valine at position 206.
- 60. An expression vector comprising a nucleic acid molecule of claim 46.
- 61. A host cell comprising the expression vector of claim 60.
STATEMENT AS TO RIGHTS TO INVENTIONS MADE UNDER FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made with government support under Contract No.W-7405-ENG-36 awarded by the U.S. Department of Energy. The government has certain rights in the invention.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10132067 |
Apr 2002 |
US |
Child |
10423688 |
Apr 2003 |
US |