Claims
- 1. An isolated polynucleotide that encodes or is complementary to a sequence that encodes a cotA polypeptide selected from the group consisting of:
(i) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a polypeptide having at least 85% sequence identity to the amino acid sequence presented in FIG. 4 (SEQ ID NO:4), (ii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 90% sequence identity to the amino acid sequence presented in FIG. 4 (SEQ ID NO:4), (iii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 95% sequence identity to the amino acid sequence presented in FIG. 4 (SEQ ID NO:4), (iv) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having the amino acid sequence presented in FIG. 4 (SEQ ID NO:4), (v) the nucleic acid sequence presented as SEQ ID NO:3 (FIG. 3), a portion greater than 200 bp thereof, or the complement thereof, and (vi) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as SEQ ID NO:3, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
- 2. An isolated polynucleotide that encodes or is complementary to a sequence that encodes a cotA polypeptide selected from the group consisting of:
(i) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a polypeptide having at least 85% sequence identity to the amino acid sequence presented in FIG. 2 (SEQ ID NO:2), (ii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 90% sequence identity to the amino acid sequence presented in FIG. 2 (SEQ ID NO:2), (iii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 95% sequence identity to the amino acid sequence presented in FIG. 2 (SEQ ID NO:2), (iv) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having the amino acid sequence presented in FIG. 2 (SEQ ID NO:2), (v) the nucleic acid sequence presented as SEQ ID NO: 1 (FIG. 1), a portion greater than 200 bp thereof, or the complement thereof, and (vi) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as SEQ ID NO: 1, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
- 3. An isolated polynucleotide that encodes or is complementary to a sequence that encodes a cotA polypeptide selected from the group consisting of:
(i) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a polypeptide having at least 85% sequence identity to the amino acid sequence presented in FIG. 6 (SEQ ID NO:6), (ii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 90% sequence identity to the amino acid sequence presented in FIG. 6 (SEQ ID NO:6), (iii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 95% sequence identity to the amino acid sequence presented in FIG. 6 (SEQ ID NO:6), (iv) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having the amino acid sequence presented in FIG. 6 (SEQ ID NO:6), (v) the nucleic acid sequence presented as SEQ ID NO:5 (FIG. 5), a portion greater than 200 bp thereof, or the complement thereof, and (vi) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as SEQ ID NO:5, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
- 4. An isolated polynucleotide encoding the amino acid having the sequence as shown in SEQ ID NO:2.
- 5. The isolated polynucleotide of claim 4 having the nucleic acid sequence as disclosed in SEQ ID NO: 1.
- 6. An isolated polynucleotide encoding the amino acid having the sequence as shown in SEQ ID NO:4.
- 7. The isolated polynucleotide of claim 6 having the nucleic acid sequence as disclosed in SEQ ID NO:3.
- 8. An isolated polynucleotide encoding the amino acid having the sequence as shown in SEQ ID NO:6.
- 9. The isolated polynucleotide of claim 8 having the nucleic acid sequence as disclosed in SEQ ID NO:5.
- 10. An expression cassette comprising a promoter operatively linked to a cotA polynucleotide.
- 11. The expression cassette of claim 10, wherein the promoter is inducible.
- 12. The expression cassette of claim 11, wherein the promoter is selected from the group consisting of glucoamylase, blue light inducible promoters (bli-4), and copper metallothionein gene (cmt).
- 13. The expression cassette of claim 12, wherein the promoter is the glaA promoter.
- 14. The expression cassette of claim 10, wherein the cotA polynucleotide is selected from the group consisting of:
(i) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a polypeptide having at least 85% sequence identity to the amino acid sequence presented in any one of FIGS. 2, 4 or 6 (SEQ ID NO :2, 4 or 6), (ii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 90% sequence identity to the amino acid sequence presented in any one of FIGS. 2, 4 or 6 (SEQ ID NO:2, 4 or 6), (iii) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having at least 95% sequence identity to the amino acid sequence presented in any one of FIG. 2, 4 or 6 (SEQ ID NO:2, 4 or 6), (iv) a nucleic acid sequence that encodes or is complementary to a sequence that encodes a cotA polypeptide having the amino acid sequence presented in any one of FIG. 2, 4 or 6 (SEQ ID NO: 2, 4 or 6), (v) the nucleic acid sequence presented as any one of SEQ ID NOs:1, 3 or 5 (FIG. 1, 3 or 5), a portion greater than 200 bp thereof, or the complement thereof, and (vi) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as any one of SEQ ID NOs:1, 3 or 5, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
- 15. An expression vector comprising the expression cassette of claim 10.
- 16. The expression vector of claim 15 comprising the polynucleotide of claim 1.
- 17. The expression vector of claim 15 comprising the polynucleotide of claim 2.
- 18. The expression vector of claim 15 comprising the polynucleotide of claim 3.
- 19. A host cell comprising the expression vector of claim 15.
- 20. The host cell of claim 19 that is a filamentous fungus.
- 21. A host cell comprising the expression vector of claim 16.
- 22. The host cell of claim 21 that is a filamentous fungus.
- 23. A host cell comprising the expression vector of claim 17.
- 24. The host cell of claim 23 that is a filamentous fungus.
- 25. A host cell comprising the expression vector of claim 18.
- 26. The host cell of claim 25 that is a filamentous fungus.
- 27. A recombinant filamentous fungal host cell comprising an exogenous cotA polynucleotide.
- 28. The host cell of claim 27 wherein said filamentous fungus includes Aspergillus, Trichoderma, and Humicola.
- 29. A substantially purified cotA polypeptide with the biological activity of a serine/threonine kinase.
- 30. The cotA polypeptide of claim 29 wherein the polypeptide comprises a sequence selected from the group consisting of an amino acid sequence having at least 85% sequence identity to the amino acid sequence presented in any one of FIGS. 2, 4 or 6 (SEQ ID NO:2, 4 or 6), an amino acid sequence having at least 90% sequence identity to the amino acid sequence presented in any one of FIGS. 2, 4 or 6 (SEQ ID NOs:2, 4 or 6), an amino acid sequence having at least 95% sequence identity to the amino acid sequence presented in any one of FIGS. 2, 4 or 6 (SEQ ID NOs:2, 4 or 6), the amino acid sequence presented as any one of SEQ ID NOs:2, 4 or 6, a substantially purified biologically active fragment of the amino acid sequence presented as any one of SEQ ID NOs:2, 4 or 6, and a substantially purified full length protein comprising the amino acid sequence presented as any one of SEQ ID NOs:2, 4 or 6.
- 31. An isolated protein associated with hyphal growth in fungi having at least 85% identity to the amino acid sequence as disclosed in SEQ ID NO:2.
- 32. The protein of claim 31 having the amino acid sequence as disclosed in SEQ ID NO:2.
- 33. An isolated protein associated with hyphal growth in fungi having at least 85% identity to the amino acid sequence as disclosed in SEQ ID NO:4.
- 34. The protein of claim 33 having the amino acid sequence as disclosed in SEQ ID NO:4.
- 35. An isolated protein associated with hyphal growth in fungi having at least 85% identity to the amino acid sequence as disclosed in SEQ ID NO:6.
- 36. The protein of claim 35 having the amino acid sequence as disclosed in SEQ ID NO:6.
- 37. A purified antibody that specifically binds to a cotA polypeptide.
- 38. A method for the detection of a polynucleotide that encodes a filamentous fungal cotA in a biological sample, said method comprising:
a. hybridizing, under moderate stringency, to a nucleic acid material of said biological sample, a polynucleotide fragment derived from any one of the sequences identified as SEQ ID NOs:1, 3 or 5, the fragment having a length of between about 15 and 250 nucleotides, thereby forming a hybridization complex; and b. detecting said hybridization complex wherein the presence of said hybridization complex correlates with the presence of a polynucleotide encoding the cotA protein in said biological sample.
- 39. The method of claim 38, wherein the polynucleotide fragment is between 15 and 30 nucleotides in length.
- 40. The method of claim 38, wherein the polynucleotide fragment is between 30 and 100 nucleotides in length.
- 41. The method of claim 38, wherein the polynucleotide fragment is between 300 and 200 nucleotides in length.
- 42. The method of claim 38, wherein the polynucleotide fragment is between 200 and 250 nucleotides in length.
- 43. The method of claim 42, wherein the polynucleotide fragment is 241 nucleotides in length.
- 44. The method of claim 38, wherein the biological sample is a filamentous fungus cell lysate.
- 45. A method of identifying a modulator of cotA function, said method comprising:
a. transfecting a fungal host cell with a polynucleotide that encodes a cotA protein; b. inducing the expression of cotA; c. contacting a test compound with the so induced fungal host cell; d. measuring the effect of the test compound on the growth of the induced fungal cell; and e. identifying the test compound as a candidate compound if it modulates the growth of the fungal cell beyond a selected threshold level.
- 46. A method for producing a desired protein in a fungus comprising the step of, culturing a recombinant fungus comprising a polynucleotide encoding the desired protein under conditions suitable for the production of said desired protein, said recombinant fungus further comprising a polynucleotide encoding a protein associated with hyphal growth in said fungus said protein having at least 85% identity to any one of the amino acid sequences as disclosed in SEQ ID NO:2, 4 or 6.
- 47. The method of claim 46 further comprising the step of recovering said desired protein.
- 48. The method of claim 46 wherein said polynucleotide encoding a protein associated with hyphal growth is homologous to said fungus said polypeptide being present in copy number greater than found in the naturally occurring fungus.
- 49. The method of claim 46 wherein the polynucleotide encoding a protein associated with hyphal growth is heterologus to said fungus and has been recombinantly introduced into said fungus.
- 50. The method of claim 46 wherein said polynucleotide encoding a protein associated with hyphal growth in said fungus comprises a replicating plasmid.
- 51. The method of claim 46wherein said polynucleotide encoding a protein associated with hyphal growth in said fungus is integrated into the fungal genome.
- 52. The method of claim 46wherein said protein associated with hyphal growth has the amino acid sequence as shown in SEQ ID NO: 2.
- 53. The method of claim 46wherein said protein associated with hyphal growth has the amino acid sequence as shown in SEQ ID NO: 4.
- 54. The method of claim 46wherein said protein associated with hyphal growth has the amino acid sequence as shown in SEQ ID NO: 6.
- 55. The method of claim 46wherein said polynucleotide encoding a protein associated with hyphal growth has 85% identity to the polynucleotide having the sequence as shown in SEQ ID NO: 1, or is capable of hybridizing to the polynucleotide having the sequence as shown in SEQ ID NO: 1 under conditions of intermediate to high stringency, or is complementary to the polynucleotide having the sequence as shown in SEQ ID NO: 1.
- 56. The method of claim 46wherein said polynucleotide encoding a protein associated with hyphal growth has 85% identity to the polynucleotide having the sequence as shown in SEQ ID NO: 3, or is capable of hybridizing to the polynucleotide having the sequence as shown in SEQ ID NO: 3 under conditions of intermediate to high stringency, or is complementary to the polynucleotide having the sequence as shown in SEQ ID NO: 3.
- 57. The method of claim 46wherein said polynucleotide encoding a protein associated with hyphal growth has 85% identity to the polynucleotide having the sequence as shown in SEQ ID NO: 5, or is capable of hybridizing to the polynucleotide having the sequence as shown in SEQ ID NO: 5 under conditions of intermediate to high stringency, or is complementary to the polynucleotide having the sequence as shown in SEQ ID NO: 5.
- 58. The method of claim 51 wherein said polynucletoide has the nucleic acid sequence as shown in SEQ ID NO: 1.
- 59.The method of claim 51wherein said polynucletoide has the nucleic acid sequence as shown in SEQ ID NO: 3.
- 60.The method of claim 51wherein said polynucletoide has the nucleic acid sequence as shown in SEQ ID NO: 5.
- 61. The method of claim 46 wherein said fungus is a filamentous fungus.
- 62. The method of claim 61 wherein said filamentous fungus includes Aspergillus, Trichoderma, and Humicola species.
- 63. The method of claim 62 wherein the Aspergillus includes A. niger, A. nidulans, A. oryzai and A. fumigatus.
- 64. A method of inducing a compact growth morphology of a filamentous fungal host cell, said method comprising the steps of:
a. transfecting said fungal host cell with a cotA polynucleotide or a fragment thereof operably linked to an inducible promoter; and b. exposing the transfected fungal host cell to a compound that induces expression of the cotA polynucleotide.
- 65. The method of claim 64, wherein the filamentous fungal host cell is a member of the Trichoderma genus.
- 66. The method of claim 65, wherein the host cell is T. reesei.
- 67. The method of claim 64, wherein the host cell is a member of the Aspergillus genus.
- 68. The method of claim 67, wherein the host cell is A. niger.
- 69. The method of claim 67, wherein the host cell is A. nidulans.
- 70. The method of claim 64, wherein the cotA polynucleotide is selected from the group consisiting of SEQ ID NOs:1, 3 and 5.
- 71. The method of claim 64, wherein the cotA polynucleotide is SEQ ID NO:1.
- 72. The method of claim 64, wherein the cotA polynulceotide is SEQ ID NO:3.
- 73. The method of claim 64, wherein the cotA polynucleotide is SEQ ID NO:5.
- 74. The method of claim 64, wherein the promoter is inducible by maltose.
- 75. The method of claim 64, wherein the promoter is temperature sensitive.
- 76. A temperature sensitive cotA from Trichoderma or Aspergillus.
- 77. The temperature sensitive cotA of claim 76, wherein the mutant is derived from any one of the cotA polypeptides presented as SEQ ID NOs: 2, 4 or 6.
- 78. The temperature sensitive cotA of claim 76, wherein the mutation conferring temperature sensitivity corresponds to the histidine to arginine substitution found in the N. crassa cot-1 variant.
- 79. An isolated polynucleotide that encodes or is complementary to a sequence that encodes a cotA polypeptide selected from the group consisting of:
(i) the nucleic acid sequence presented as SEQ ID NO:13 (FIG. 11), a portion greater than 200 bp thereof, or the complement thereof, and (ii) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as SEQ ID NO:13, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
- 80. An isolated polynucleotide that encodes or is complementary to a sequence that encodes a cotA polypeptide selected from the group consisting of:
(i) the nucleic acid sequence presented as SEQ ID NO:14 (FIG. 12), a portion greater than 200 bp thereof, or the complement thereof, and (ii) a nucleic acid sequence that hybridizes, under high stringency conditions to the sequence presented as SEQ ID NO:14, or the complement or a fragment thereof, wherein said isolated polynucleotide, when induced in a fungal cell, causes said cell to grow more slowly.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application claims priority to No. 60/276,571 (attorney docket number GC682P) filed Mar. 15, 2001 and to No. 60/276,618 (attorney docket number GC681 P), filed Mar. 14, 2001.
Provisional Applications (2)
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Number |
Date |
Country |
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60276571 |
Mar 2001 |
US |
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60276618 |
Mar 2001 |
US |