Claims
- 1. An isolated polynucleotide comprising a member selected from the group consisting of:
(a) a polynucleotide having at least 80% sequence identity to a polynucleotide of SEQ ID NO: 1, wherein the % sequence identity is based on the entire region coding for SEQ ID NO: 2 and is calculated by the GAP algorithm under default parameters; (b) a polynucleotide encoding the polypeptide of SEQ ID NO: 2; (c) the polynucleotide of SEQ ID NO: 1; and (d) a polynucleotide which is complementary to a polynucleotide of (a), (b), or (c); wherein the polynucleotide of (a), (b), (c), or (d) is capable of modulating the level of XRCC1.
- 2. A recombinant expression cassette, comprising a member of claim 1 operably linked to a promoter.
- 3. A non-human host cell comprising the recombinant expression cassette of claim 2.
- 4. A transgenic plant comprising an isolated polynucleotide of claim 1.
- 5. The transgenic plant of claim 4, wherein said plant is a monocot.
- 6. The transgenic plant of claim 4, wherein said plant is a dicot.
- 7. The transgenic plant of claim 4, wherein said plant is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 8. A transgenic seed from the transgenic plant of claim 4.
- 9. A method of modulating the level of XRCC1 in a plant cell, comprising:
(a) introducing into a plant cell a recombinant expression cassette comprising a polynucleotide of claim 1 operably linked to a promoter; (b) culturing the plant cell under plant cell growing conditions; and (c) inducing expression of said polynucleotide for a time sufficient to modulate the level of XRCC1 in said plant cell.
- 10. The method of claim 9, wherein the plant cell is from a monocot or a dicot.
- 11. The method of claim 9, wherein the plant cell is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 12. A transgenic plant cell generated by the method of claim 9.
- 13. The plant cell of claim 12, wherein the plant cell is from a monocot or a dicot.
- 14. The plant cell of claim 12, wherein the plant cell is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 15. A method of modulating the level of XRCC1 in a plant, comprising:
(a) introducing into a plant cell a recombinant expression cassette comprising a polynucleotide of claim 1 operably linked to a promoter; (b) culturing the plant cell under plant cell growing conditions; (c) regenerating a plant which possesses the transformed genotype; and (d) inducing expression of said polynucleotide for a time sufficient to modulate the level of XRCC1 in said plant.
- 16. The method of claim 15, wherein the plant is a monocot or a dicot.
- 17. The method of claim 15, wherein the plant is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 18. A transgenic plant generated by the method of claim 15.
- 19. The plant of claim 18, wherein the plant is a monocot or a dicot.
- 20. The plant of claim 18, wherein the plant is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 21. A transgenic seed produced by the plant of claim 18.
- 22. An isolated XRCC1 protein comprising a member selected from the group consisting of:
(a) a polypeptide of at least 30 contiguous amino acids from the polypeptide of SEQ ID NO: 2; (b) the polypeptide of SEQ ID NO: 2; (c) a polypeptide having at least 80% sequence identity to, and having at least one linear epitope in common with, the polypeptide of SEQ ID NO: 2, wherein said sequence identity is determined over the entire length of SEQ ID NO: 2 using the GAP program under default parameters; and (d) at least one polypeptide encoded by a member of claim 1; wherein the polypeptide of (b), (c), or (d) comprises at least one XRCC1 activity.
- 23. A method of increasing transformation efficiency comprising:
(a) introducing into a plant cell a polynucleotide of interest and an XRCC1 polynucleotide to produce a transformed plant cell; (b) culturing the plant cell under cell growing conditions; and (c) inducing expression of the XRCC1 polynucleotide for a time sufficient to increase the transformation efficiency of the polynucleotide of interest.
- 24. The method of claim 23 wherein the plant cell is from a monocot or a dicot.
- 25. The method of claim 24 wherein the plant cell is selected from the group consisting of: maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 26. A transformed plant cell produced by the method of claim 23.
- 27. The plant cell of claim 26, wherein the plant cell is from a monocot or a dicot.
- 28. The plant cell of claim 27, wherein the plant cell is selected from the group consisting of: maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 29. The method of claim 23, wherein the transformed plant cell is grown under conditions sufficient to produce a transformed plant.
- 30. A transformed plant produced by the method of claim 29.
- 31. The plant of claim 30, wherein the plant is a monocot or a dicot.
- 32. The plant of claim 31, wherein the plant is selected from the group consisting of: maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 33. A transgenic seed produced by the plant of claim 30.
- 34. The method of claim 23, wherein the XRCC1 polynucleotide and the polynucleotide of interest are introduced into the plant cell simultaneously.
- 35. The method of claim 23, wherein the XRCC1 polynucleotide is introduced into the plant cell prior to the introduction of the polynucleotide of interest.
- 36. A method of increasing targeted DNA repair comprising:
(a) introducing into a plant cell a DNA repair template and an XRCC1 polynucleotide to produce a transformed plant cell, wherein the DNA repair template comprises a polynucleotide containing nucleotide changes at specific sites within its sequence to be incorporated into a genomic target polynucleotide of interest; (b) culturing the transformed plant cell under cell growing conditions; and (c) inducing expression of the XRCC1 polynucleotide for a time sufficient to increase the targeted DNA repair of the target polynucleotide of interest.
- 37. The method of claim 36 wherein the plant cell is from a monocot or a dicot.
- 38. The method of claim 37 wherein the plant cell is selected from the group consisting of: maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 39. A transformed plant cell produced by the method of claim 36.
- 40. The plant cell of claim 39, wherein the plant cell is from a monocot or a dicot.
- 41. The plant cell of claim 40 wherein the plant cell is selected from the group consisting of maize, soybean, safflower, sunflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 42. The method of claim 36, wherein the transformed plant cell is grown under conditions sufficient to produce a transformed plant.
- 43. A transformed plant produced by the method of claim 42.
- 44. The plant of claim 43 wherein the plant is from a monocot or a dicot.
- 45. The plant of claim 44 wherein the plant is selected from the group consisting of maize, soybean, sunflower, safflower, sorghum, canola, wheat, alfalfa, cotton, rice, barley, and millet.
- 46. A transgenic seed produced by the plant of claim 43.
- 47. A method of generating a male sterile plant comprising:
(a) introducing into a plant cell a recombinant expression cassette comprising a polynucleotide of claim 1 operably linked to an appropriate promoter; (b) culturing the plant cell under plant cell growing conditions; (c) regenerating a plant which possesses the transformed genotype; and (d) inducing expression of the polynucleotide for a time sufficient to suppress the level of XRCC1 polypeptide in said plant to generate a male sterile plant.
- 48. The method of claim 47 wherein the polynucleotide is in antisense orientation.
- 49. The method of claim 47 wherein the polynucleotide is in sense orientation.
- 50. The method of claim 47 wherein the plant is maize.
- 51. A transgenic plant generated by the method of claim 47.
- 52. A transformed plant produced by the method of claim 37.
- 53. The plant of claim 51, wherein the plant is maize.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Application Serial No. 60/294,945 filed May 31, 2001, which is herein incorporated in entirety by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60294945 |
May 2001 |
US |