Claims
- 1. An isolated nucleotide fragment comprising a nucleic acid sequence selected from the group consisting of:
(a) a nucleic acid sequence encoding a first polypeptide having receptor-like protein kinase activity, the first polypeptide having at least 85% identity based on the Clustal method of alignment when compared to a second polypeptide selected from the group consisting of SEQ ID NOs: 2 or 4; (b) a nucleic acid sequence encoding a third polypeptide having MAP kinase-kinase-kinase activity, the third polypeptide having at least 70% identity based on the Clustal method of alignment when compared to a fourth polypeptide selected from the group consisting of SEQ ID NOs: 6, 8, 10, 12, 14, 16, 493, 495, or 497; (c) a nucleic acid sequence encoding a ninth polypeptide having LIP15-like transcription factor activity, the ninth polypeptide having at least 85% identity based on the Clustal method of alignment when compared to a tenth polypeptide selected from the group consisting of SEQ ID NOs: 148, 152, or 154; (d) a nucleic acid sequence encoding an eleventh polypeptide caleosin-like activity, the eleventh polypeptide having at least 70% identity based on the Clustal method of alignment when compared to a twelfth polypeptide selected from the group consisting of SEQ ID NOs: 158, 160, 162, 164, 166, 168, 170, 172, 174, 176, 178, 180, 182, 184, 186, 188, 190, 192, 194, 196, 198, 499, 501, 503, 505, 507, 509, 511, 513, 515, 517, 519, 521, 523, 525, or 527; or (e) a nucleic acid sequence encoding a thirteenth polypeptide having ATP citrate lyase activity, the thirteenth polypeptide having at least 94% identity based on the Clustal method of alignment when compared to a fourteenth polypeptide selected from the group consisting of SEQ ID NOs: 200, 202, 204, 206, 208, 210, 212, 214, 216, 218, 220, 222, 224, 226, 228, 230, or232; or (f) a nucleic acid sequence encoding a fifteenth polypeptide having SNF1-like activity, the fifteenth polypeptide having at least 90% identity based on the Clustal method of alignment when compared to a sixteenth polypeptide selected from the group consisting of SEQ ID NOs: 244, 256, or 258; or (g) a nucleic acid sequence encoding a nineteenth polypeptide having CKC-like transcription factor activity, the nineteenth polypeptide having at least 88% identity based on the Clustal method of alignment when compared to an twentieth polypeptide selected from the group consisting of SEQ ID NOs: 310, 312, 316, 318, 320, 328, 330, 332, 338, 342, 344, 348, 352, 354, 358, 362, 477, 479, 481, 483, 485, 487, 489, or 491.
- 2. The complement of the nucleotide fragment of claim 1.
- 3. The nucleotide fragment of claim 1 or claim 2 wherein said fragment or a part thereof is useful in antisense inhibition or co-suppression in a transformed plant.
- 4. A chimeric construct comprising the isolated nucleic acid fragment of claim 1 to 3 operably linked to at least one regulatory sequence.
- 5. A plant comprising in its genome the chimeric construct of claim 4.
- 6. The plant of claim 5 wherein said plant is selected from the group consisting of corn, soybean, wheat, rice, canola, Brassica, sorghum, sunflower, and coconut.
- 7. Seeds obtained from the plant of claim 5.
- 8. Oil obtained from the seeds of claim 5.
- 9. A method for altering oil phenotype in a plant which comprises:
(a) transforming a plant with the chimeric construct of claim 4;(b) growing the transformed plant under conditions suitable for expression of the chimeric gene; and (c) selecting those transformed plants whose oil phenotype has been altered compared to the oil phenotype of an untransformed plant.
- 10. A method for altering oil phenotype in a plant which comprises:
(a) transforming a plant with a chimeric construct comprising an isolated nucleotide fragment comprising a nucleic acid sequence selected from the group consisting of:
(i) a nucleic acid sequence encoding a plant receptor-like protein kinase; (ii) the complement of the nucleic acid sequence of (i); (iii) the sequence of (i) or (ii) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (iv) a nucleic acid sequence encoding a plant MAP kinase-kinase-kinase; (v) the complement of the nucleic acid sequence of (iv); (vi) the sequence of (iv) or (v) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (vii) a nucleic acid sequence encoding a plant LIP15 transcription factor; (viii) the complement of the nucleic acid sequence of (vii); (ix) the sequence of (vii) or (viii) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (x) a nucleic acid sequence encoding a plant caleosin; (xi) the complement of the nucleic acid sequence of (x); (xii) the sequence of (x) or (xi) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (xiii) a nucleic acid sequence encoding a plant ATP citrate lyase; (xiv) the complement of the nucleic acid sequence of (xiii); (xv) the sequence of (xiii) or (xiv) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (xvi) a nucleic acid sequence encoding a plant SNF1 transcription factor; (xvii) the complement of the nucleic acid sequence of (xvi); (xviii) the sequence of (xvi) or (xvii) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (xix) a nucleic acid sequence encoding a plant Aintegumenta-like transcription factor; (xx) the complement of the nucleic acid sequence of (xix); (xxi) the sequence of (xix) or (xx) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; wherein said nucleic acid sequence is operably linked to at least one regulatory sequence; (b) growing the transformed plant under conditions suitable for expression of the chimeric construct; and (c) selecting those transformed plants whose oil phenotype has been altered compared to the oil phenotype of an untransformed plant.
- 11. A method for altering oil phenotype in a plant which comprises:
(a) transforming a plant with a chimeric construct comprising isolated nucleotide fragment comprising a nucleic acid sequence selected from the group consisting of:
(i) a nucleic acid sequence encoding a plant SNF1 protein kinase having at least 60% identity based on the Clustal method of alignment when compared to a second polypeptide selected from the group consisting of even SEQ ID NOs: from 234 to 258 and SEQ ID NOs: 400-409; (ii) the complement of the nucleic acid sequence of (i); (iii) the sequence of (i) or (ii) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; (iv) a nucleic acid sequence encoding a plant Aintegumenta-like transcription factor having at least 50% identity based on the Clustal method of alignment when compared to a second polypeptide selected from the group consisting of even SEQ ID NOs: from 310 to 364, odd SEQ ID NOs: from 477 to491, and SEQ ID NO: 419-429 and 528-530; (v) the complement of the nucleic acid sequence of (iv); (vi) the sequence of (iv) or (v) or a part thereof which is useful in antisense inhibition or co-suppression in a transformed plant; wherein said nucleic acid sequence is operably linked to at least one regulatory sequence; (b) growing the transformed plant under conditions suitable for expression of the chimeric construct; and (c) selecting those transformed plants whose oil phenotype has been altered compared to the oil phenotype of an untransformed plant.
- 12. A method to isolate nucleic acid fragments associated with altering oil phenotype in a plant which comprises:
(a) comparing all even SEQ ID NOs: from 2 to 364, and SEQ ID NOs: 365-429 and 528-532, and all odd SEQ ID NOs: from 477 to 527 with other polypeptide sequences for the purpose of identifying polypeptides associated with altering oil phenotype in a plant; (b) identifying the conserved sequences(s) or 4 or more amino acids obtained in step (a); (c) making region-specific nucleotide probe(s) or oligomer(s) based on the conserved sequences identified in step (b); and (d) using the nucleotide probe(s) or oligomer(s) of step (c) to isolate sequences associated with altering oil phenotype by sequence dependent protocols.
- 13. The method of claim 10 wherein the plant is selected from the group consisting of corn, soybean, wheat, rice, canola, Brassica, sorghum, sunflower, and coconut.
- 14. The method of claim 11 wherein the plant is selected from the group consisting of corn, soybean, wheat, rice, canola, Brassica, sorghum, sunflower, and coconut.
- 15. The method of claim 12 wherein the plant is selected from the group consisting of corn, soybean, wheat, rice, canola, Brassica, sorghum, sunflower, and coconut.
- 16. A method for altering oil phenotype in a plant which comprises:
(a) transforming a plant with a chimeric construct comprising an isolated nucleic acid fragment operably linked to at least one regulatory sequence wherein said fragment has a nucleic acid sequence encoding a polypeptide having a sequence identity of at least 50% based on the Clustal method of alignment when compared to a polypeptide selected from the group consisting of even SEQ ID NOs: from 2 to 364, and SEQ ID NOs: 365-429 and 528-532, and all odd SEQ ID NOs: from 477 to 527; (b) growing the transformed plant under conditions suitable for expression of the chimeric construct; and (c) selecting those transformed plants whose oil phenotype has been altered compared to the oil phenotype of an untransformed plant.
- 17. The method of claim 16 wherein the plant is selected from the group consisting of corn, soybean, wheat, rice, canola, Brassica, sorghum, sunflower, and coconut.
- 18. A method of mapping genetic variations related to altered oil phenotypes in a plant comprising:
(a) crossing two plant varieties; and (b) evaluating genetic variations with respect to nucleic acid sequences set forth in the odd SEQ ID NOs: from 1 to 363, and in even SEQ ID NOs: from 476 to 526, in progeny plants resulting from the cross of step (a) wherein the evaluation is made using a method selected from the group consisting of: RFLP analysis, SNP analysis, and PCR-based analysis.
- 19. A method of molecular breeding to obtain altered oil phenotypes in a plant comprising:
(a) crossing two plant varieties; and (b) evaluating genetic variations with respect to nucleic acid sequences set forth in the odd SEQ ID NOs: from 1 to 363, and in even SEQ ID NOs: from 476 to 526, in progeny plants resulting from the cross of step (a) wherein the evaluation is made using a method selected from the group consisting of: RFLP analysis, SNP analysis, and PCR-based analysis.
- 20. A method to isolate nucleic acid fragments associated with altering oil phenotype in a plant which comprises: (a) comparing the even SEQ ID NOs: from 2 to 364, and SEQ ID NOs: 365-429 and 528-532, and all odd SEQ ID NOs: from 477 to 527, with other polypeptide sequences for the purpose of identifying polypeptides associated with altering oil phenotype in a plant;
(b) identifying the conserved sequences(s) or 4 or more amino acids obtained in step (a); (c) making region-specific nucleotide probe(s) or oligomer(s) based on the conserved sequences identified in step (b); and (d) using the nucleotide probe(s) or oligomer(s) of step (c) to isolate sequences associated with altering oil phenotype by sequence dependent protocols.
Parent Case Info
[0001] This application claims the priority benefit of U.S. Provisional Application 60/301,913 filed Jun. 29, 2001, the disclosure of which is hereby incorporated by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60301913 |
Jun 2001 |
US |