Claims
- 1. A polynucleotide encoding a mutant large subunit of a plant ADP-glucose pyrophosphorylase polypeptide, or a biologically-active fragment of said mutant polypeptide, wherein said mutant polypeptide comprises amino acid mutations at two or more sites in the amino acid sequence of said polypeptide and wherein when said mutant polypeptide is expressed with the small subunit of ADP-glucose pyrophosphorylase to form a mutant ADP-glucose pyrophosphorylase enzyme, said mutant enzyme, or a biologically-active fragment of said mutant enzyme, exhibits increased heat stability relative to wild type ADP-glucose pyrophosphorylase enzyme.
- 2. The polynucleotide according to claim 1, wherein said mutant enzyme exhibits enzymatic activity substantially the same or greater than that exhibited by an ADP-glucose pyrophosphorylase enzyme having only a single amino acid substitution of a histidine to tyrosine at position 333 in the amino acid sequence of the wild type large subunit of maize.
- 3. The polynucleotide according to claim 1, wherein said mutant polypeptide encoded by said polynucleotide comprises a first amino acid mutation wherein the histidine amino acid corresponding to position 333 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 4. The polynucleotide according to claim 3, wherein the amino acid that replaces histidine at position number 333 is selected from the group consisting of tyrosine, phenylalanine, methionine, glycine, serine, threonine, cysteine, asparagine, and glutamine.
- 5. The polynucleotide according to claim 3, wherein the amino acid that replaces histidine at position number 333 is tyrosine.
- 6. The polynucleotide according to claim 3, wherein the amino acid that replaces histidine at position number 333 is phenylalanine.
- 7. The polynucleotide according to claim 3, wherein the amino acid that replaces histidine at position number 333 is methionine.
- 8. The polynucleotide according to claim 1, wherein said mutant polypeptide encoded by said polynucleotide comprises a first amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 9. The polynucleotide according to claim 8, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 10. The polynucleotide according to claim 8, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 11. The polynucleotide according to claim 1, wherein said mutant polypeptide encoded by said polynucleotide comprises a first amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme
- 12. The polynucleotide according to claim 11, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 13. The polynucleotide according to claim 3, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 14. The polynucleotide according to claim 13, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 15. The polynucleotide according to claim 13, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 16. The polynucleotide according to claim 4, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 17. The polynucleotide according to claim 16, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 18. The polynucleotide according to claim 16, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 19. The polynucleotide according to claim 5, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 20. The polynucleotide according to claim 19, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 21. The polynucleotide according to claim 19, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 22. The polynucleotide according to claim 6, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 23. The polynucleotide according to claim 22, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 24. The polynucleotide according to claim 22, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 25. The polynucleotide according to claim 7, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 177 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 26. The polynucleotide according to claim 25, wherein the amino acid that replaces alanine at position number 177 is a proline.
- 27. The polynucleotide according to claim 25, wherein the amino acid that replaces alanine at position number 177 is a valine.
- 28. The polynucleotide according to claim 3, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide ofmaize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 29. The polynucleotide according to claim 28, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 30. The polynucleotide according to claim 4, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 31. The polynucleotide according to claim 30, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 32. The polynucleotide according to claim 5, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 33. The polynucleotide according to claim 32, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 34. The polynucleotide according to claim 6, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 35. The polynucleotide according to claim 34, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 36. The polynucleotide according to claim 7, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide ofmaize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 37. The polynucleotide according to claim 36, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 38. The polynucleotide according to claim 8, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 39. The polynucleotide according to claim 38, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 40. The polynucleotide according to claim 9, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide ofmaize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 41. The polynucleotide according to claim 40, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 42. The polynucleotide according to claim 10, wherein said mutant polypeptide encoded by said polynucleotide comprises a second amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 43. The polynucleotide according to claim 42, wherein the amino acid that replaces alanine at position number 396 is a valine.
- 44. The polynucleotide according to claim 13, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 45. The polynucleotide according to claim 44, wherein the amino acid that replaces alanine at position 396 is a valine.
- 46. The polynucleotide according to claim 14, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 47. The polynucleotide according to claim 46, wherein the amino acid that replaces alanine at position 396 is a valine.
- 48. The polynucleotide according to claim 15, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 49. The polynucleotide according to claim 48, wherein the amino acid that replaces alanine at position 396 is a valine.
- 50. The polynucleotide according to claim 16, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 51. The polynucleotide according to claim 50, wherein the amino acid that replaces alanine at position 396 is a valine.
- 52. The polynucleotide according to claim 17, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 53. The polynucleotide according to claim 52, wherein the amino acid that replaces alanine at position 396 is a valine.
- 54. The polynucleotide according to claim 18, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 55. The polynucleotide according to claim 54, wherein the amino acid that replaces alanine at position 396 is a valine.
- 56. The polynucleotide according to claim 19, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 57. The polynucleotide according to claim 56, wherein the amino acid that replaces alanine at position 396 is a valine.
- 58. The polynucleotide according to claim 20, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 59. The polynucleotide according to claim 58, wherein the amino acid that replaces alanine at position 396 is a valine.
- 60. The polynucleotide according to claim 21, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 61. The polynucleotide according to claim 60, wherein the amino acid that replaces alanine at position 396 is a valine.
- 62. The polynucleotide according to claim 22, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 63. The polynucleotide according to claim 62, wherein the amino acid that replaces alanine at position 396 is a valine.
- 64. The polynucleotide according to claim 23, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 65. The polynucleotide according to claim 64, wherein the amino acid that replaces alanine at position 396 is a valine.
- 66. The polynucleotide according to claim 24, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 67. The polynucleotide according to claim 66, wherein the amino acid that replaces alanine at position 396 is a valine.
- 68. The polynucleotide according to claim 25, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 69. The polynucleotide according to claim 68, wherein the amino acid that replaces alanine at position 396 is a valine.
- 70. The polynucleotide according to claim 26, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 71. The polynucleotide according to claim 70, wherein the amino acid that replaces alanine at position 396 is a valine.
- 72. The polynucleotide according to claim 27, wherein said mutant polypeptide encoded by said polynucleotide comprises a third amino acid mutation wherein the alanine amino acid corresponding to position 396 in the amino acid sequence of the wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize is replaced by an amino acid that confers said increased heat stability on said mutant enzyme.
- 73. The polynucleotide according to claim 72, wherein the amino acid that replaces alanine at position 396 is a valine.
- 74. The polynucleotide according to claim 1, wherein said mutant protein encoded by said polynucleotide further comprises an amino acid mutation that confers increased seed weight to a plant expressing said polynucleotide.
- 75. The polynucleotide according to claim 74, wherein said polynucleotide comprises the Rev6 mutation.
- 76. The polynucleotide according to claim 74, wherein said polynucleotide encodes a large subunit AGP enzyme wherein at least one serine residue is inserted between the amino acids corresponding to 494 and 495 in the amino acid sequence of wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize of the native AGP enzyme subunit.
- 77. The polynucleotide according to claim 74, wherein said polynucleotide encodes a large subunit AGP enzyme wherein the amino acid pair tyrosine:serine is inserted between the amino acids corresponding to 494 and 495 in the amino acid sequence of wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize of the native AGP enzyme subunit.
- 78. The polynucleotide according to claim 74, wherein said polynucleotide encodes a large subunit AGP enzyme wherein the amino acid pair serine:tyrosine is inserted between the amino acids corresponding to 495 and 496 in the amino acid sequence of wild type large subunit of ADP-glucose pyrophosphorylase polypeptide of maize of the native AGP enzyme subunit.
- 79. A method for increasing resistance of a plant to heat stress conditions, said method comprising incorporating a polynucleotide selected from the group consisting of the polynucleotide of claim 1, the polynucleotide of claim 2, the polynucleotide of claim 3, the polynucleotide of claim 4, the polynucleotide of claim 5, the polynucleotide of claim 6, the polynucleotide of claim 7, the polynucleotide of claim 8, the polynucleotide of claim 9, the polynucleotide of claim 10, the polynucleotide of claim 11, the polynucleotide of claim 12, the polynucleotide of claim 13, the polynucleotide of claim 14, the polynucleotide of claim 15, the polynucleotide of claim 16, the polynucleotide of claim 17, the polynucleotide of claim 18, the polynucleotide of claim 19, the polynucleotide of claim 20, the polynucleotide of claim 21, the polynucleotide of claim 22, the polynucleotide of claim 23, the polynucleotide of claim 24, the polynucleotide of claim 25, the polynucleotide of claim 26, the polynucleotide of claim 27, the polynucleotide of claim 28, the polynucleotide of claim 29, the polynucleotide of claim 30, the polynucleotide of claim 31, the polynucleotide of claim 32, the polynucleotide of claim 33, the polynucleotide of claim 34, the polynucleotide of claim 35, the polynucleotide of claim 36, the polynucleotide of claim 37, the polynucleotide of claim 38, the polynucleotide of claim 39, the polynucleotide of claim 40, the polynucleotide of claim 41, the polynucleotide of claim 42, the polynucleotide of claim 43, the polynucleotide of claim 44, the polynucleotide of claim 45, the polynucleotide of claim 46, the polynucleotide of claim 47, the polynucleotide of claim 48, the polynucleotide of claim 49, the polynucleotide of claim 50, the polynucleotide of claim 51, the polynucleotide of claim 52, the polynucleotide of claim 53, the polynucleotide of claim 54, the polynucleotide of claim 55, the polynucleotide of claim 56, the polynucleotide of claim 57, the polynucleotide of claim 58, the polynucleotide of claim 59, the polynucleotide of claim 60 , the polynucleotide of claim 61, the polynucleotide of claim 62, the polynucleotide of claim 63, the polynucleotide of claim 64, the polynucleotide of claim 65, the polynucleotide of claim 66, the polynucleotide of claim 67, the polynucleotide of claim 68, the polynucleotide of claim 69, the polynucleotide of claim 70, the polynucleotide of claim 71, the polynucleotide of claim 72, and the polynucleotide of claim 73 in said plant and expressing the protein encoded by said polynucleotide.
- 80. The method according to claim 79, wherein said plant is a monocotyledonous plant.
- 81. The method according to claim 80, wherein said monocotyledonous plant is selected from the group consisting of rice, wheat, barley, oats, sorghum, maize, lilies, and millet.
- 82. The method according to claim 79, wherein said plant is Zea mays.
- 83. The method according to claim 79, wherein said plant is a dicotyledonous plant.
- 84. The method according to claim 83, wherein said dicotyledonous plant is selected from the group consisting of peas, alfalfa, chickpea, chicory, clover, kale, lentil, prairie grass, soybean, tobacco, potato, sweet potato, radish, cabbage, rape, apple trees, and lettuce.
- 85. A plant or plant tissue comprising a polynucleotide selected from the group consisting of the polynucleotide of claim 1, the polynucleotide of claim 2, the polynucleotide of claim 3, the polynucleotide of claim 4, the polynucleotide of claim 5, the polynucleotide of claim 6, the polynucleotide of claim 7, the polynucleotide of claim 8, the polynucleotide of claim 9, the polynucleotide of claim 10, the polynucleotide of claim 11, the polynucleotide of claim 12, the polynucleotide of claim 13, the polynucleotide of claim 14, the polynucleotide of claim 15, the polynucleotide of claim 16, the polynucleotide of claim 17, the polynucleotide of claim 18, the polynucleotide of claim 19, the polynucleotide of claim 20, the polynucleotide of claim 21, the polynucleotide of claim 22, the polynucleotide of claim 23, the polynucleotide of claim 24, the polynucleotide of claim 25, the polynucleotide of claim 26, the polynucleotide of claim 27, the polynucleotide of claim 28, the polynucleotide of claim 29, the polynucleotide of claim 30, the polynucleotide of claim 31, the polynucleotide of claim 32, the polynucleotide of claim 33, the polynucleotide of claim 34, the polynucleotide of claim 35, the polynucleotide of claim 36, the polynucleotide of claim 37, the polynucleotide of claim 38, the polynucleotide of claim 39, the polynucleotide of claim 40, the polynucleotide of claim 41, the polynucleotide of claim 42, the polynucleotide of claim 43, the polynucleotide of claim 44, the polynucleotide of claim 45, the polynucleotide of claim 46, the polynucleotide of claim 47, the polynucleotide of claim 48, the polynucleotide of claim 49, the polynucleotide of claim 50, the polynucleotide of claim 51, the polynucleotide of claim 52, the polynucleotide of claim 53, the polynucleotide of claim 54, the polynucleotide of claim 55, the polynucleotide of claim 56, the polynucleotide of claim 57, the polynucleotide of claim 58, the polynucleotide of claim 59, the polynucleotide of claim 60, the polynucleotide of claim 61, the polynucleotide of claim 62, the polynucleotide of claim 63, the polynucleotide of claim 64, the polynucleotide of claim 65, the polynucleotide of claim 66, the polynucleotide of claim 67, the polynucleotide of claim 68, the polynucleotide of claim 69, the polynucleotide of claim 70, the polynucleotide of claim 71, the polynucleotide of claim 72, and the polynucleotide of claim 73.
- 86. The plant or plant tissue according to claim 85, wherein said plant or plant tissue is monocotyledonous.
- 87. The plant or plant tissue according to claim 86, wherein said monocotyledonous plant or plant tissue is selected from the group consisting of rice, wheat, barley, oats, sorghum, maize, lilies, and millet.
- 88. The plant or plant tissue according to claim 85, wherein said plant is Zea mays or said plant tissue is from Zea mays.
- 89. The plant or plant tissue according to claim 85, wherein said plant or plant tissue is dicotyledonous.
- 90. The plant or plant tissue according to claim 89, wherein said dicotyledonous plant or plant tissue is selected from the group consisting of peas, alfalfa, chickpea, chicory, clover, kale, lentil, prairie grass, soybean, tobacco, potato, sweet potato, radish, cabbage, rape, apple trees, and lettuce.
- 91. The plant tissue according to claim 85, wherein said plant tissue is a seed.
- 92. A mutant starch biosynthesis protein encoded by the polynucleotide of claim 1.
- 93. A method for increasing a characteristic of a plant selected from the group consisting of seed number, plant biomass, Harvest Index, flag leaf weight, seed heads, and total seed weight, said method comprising incorporating the polynucleotide of claim 75 into the genome of said plant and expressing the protein encoded by said polynucleotide molecule.
Government Interests
[0001] This invention was made with government support under National Science Foundation grant number 9316887. The government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60275768 |
Mar 2001 |
US |