Claims
- 1. Genetically transformed plant cells comprising a desired nucleotide sequence and a co-introduced nucleotide sequence wherein expression or transcription of the co-introduced nucleotide sequence in the transformed cells gives said transformed cells a competitive advantage when a population of cells including the transformed and the non-transformed cells is supplied with a compound that only the transformed cells are able to utilize, and the desired nucleotide sequence codes for a gene other than a toxin, antibiotic or herbicide resistance gene.
- 2. Transformed plants derived from the cells of claim 1.
- 3. Seeds produced from the transformed plants of claim 2, wherein said seeds are capable of germinating to produce transformed plants.
- 4. Genetically transformed maize cells comprising a desired nucleotide sequence and a co-introduced nucleotide sequence wherein the co-introduced nucleotide sequence gives the transformed cells a competitive advantage when a population of cells including the transformed cells and nontransformed cells is supplied with a compound, wherein the co-introduced nucleotide sequence codes for a phosphomanno-isomerase or a mannophosphatase and the compound is mannose, a mannose derivative or a mannose precursor.
- 5. Maize plants derived from the transformed cells of claim 4.
- 6. Seeds produced from the transformed maize plants of claim 5, wherein said seeds are capable of germinating to produce transformed maize plants.
- 7. A method of selecting genetically transformed cells from a population of cells comprising the steps of:
- a) introducing into the genome of a plant cell a desired nucleotide sequence and a co-introduced nucleotide sequence wherein said desired nucleotide sequence or co-introduced nucleotide sequence codes for a sequence other than a toxin, antibiotic or herbicide resistance gene;
- b) obtaining transformed cells;
- c) supplying to the population of cells a compound that only transformed cells are able to utilize wherein said transformed cells have a competitive advantage over non-transformed cells due to the expression or transcription of the desired nucleotide sequence or co-introduced nucleotide sequence in the presence of the compound; and
- d) selecting said transformed cells from the population of cells.
- 8. The method of claim 7 wherein the desired nucleotide sequence or the co-introduced nucleotide sequence comprises a region which: (a) encodes a protein which is involved in the metabolism of the compound or (b) regulates the activity of a gene encoding the protein or both.
- 9. The method of claim 8 wherein the protein is selected from the group consisting of xyloisomerases, phosphosugar-isomerases, phosphosugar-mutases, phosphatase, sugar epimerases, sugar-permease and phosphosugar-permease.
- 10. The method of claim 9 wherein the protein is a phosphomanno-isomerase, a xylose isomerase, a phosphomanno mutase or a mannose epimerase.
- 11. The method of claim 8 wherein the protein is mannose-6-phosphate isomerase, mannose-1-phosphate isomerase, mannose-6-phosphatase or mannose-1-phosphatase.
- 12. The method of claim 7 wherein the desired nucleotide sequence or co-introduced nucleotide sequence encodes a protein which is .beta.-glucuronidase.
- 13. The method of claim 7 wherein the desired nucleotide sequence or co-introduced nucleotide sequence encodes a protein which is a permease.
- 14. The method of claim 7 wherein expression or transcription of the co-introduced nucleotide sequence or desired nucleotide sequence results in blockage of the metabolism of the compound.
- 15. The method of claim 7 wherein at least one of the nucleotide sequences comprises DNA which is modified wherein codons which are preferred by the plant organism into which the sequences are introduced are used so that expression of the modified DNA in the organism yields substantially similar protein to that obtained by expression of the unmodified DNA in the organism in which the protein-encoding components of the sequences are endogenous.
- 16. The method of claim 7 wherein the compound is selected from the group consisting of an inactivated cytokinin, auxin or gibberellin; a carbohydrate; a protein; a vitamin; an opine; a sterol and a saponin.
- 17. The method according to claim 7 wherein the desired nucleotide sequence and the co-introduced nucleotide sequence are introduced on the same vector.
- 18. The method according to claim 7 wherein the desired nucleotide sequence and the co-introduced nucleotide sequence are on different vectors.
- 19. The method according to claim 7 wherein the compound is an opine and the desired nucleotide sequence is an opine metabolism or transport gene wherein the opine metabolism or transport gene allows the opine to function as an amino acid, nitrogen or carbohydrate source in the transformed cells.
- 20. The method of claim 16 wherein the compound is mannose, galactose, xylose, or a derivative thereof.
- 21. The method of claim 12 wherein the compound is a .beta.-glucuronidase inhibitor.
- 22. The method of claim 12 wherein the compound is a cytokinin glucuronide.
- 23. The method of claim 7 wherein the cells have been transformed by a bacterium which is sensitive to the compound.
- 24. The method of claim 7 further comprising supplying to the population of cells an agent which reduces the toxicity of the compound to the cells.
- 25. The method of claim 24 wherein the agent is methyl-3-o-glucose or phloridzin.
- 26. The method of claim 7 further comprising the step of regenerating a plant from said transformed cells.
- 27. A method of selecting genetically transformed maize cells from a population of cells comprising the steps of:
- a) introducing into the genome of a maize cell a desired nucleotide sequence and a co-introduced nucleotide;
- b) obtaining transformed cells;
- c) supplying to the population of cells a compound wherein said transformed cells have a competitive advantage over non-transformed cells due to the expression or transcription of the desired nucleotide sequence or co-introduced nucleotide sequence in the presence of the compound; and
- d) selecting said transformed cells from the population of cells wherein said co-introduced nucleotide sequence comprises a sequence encoding a phosphomanno-isomerase or a manno-phosphatase and the compound is mannose, a mannose derivative or a mannose precursor.
- 28. The method of claim 27 wherein the transformed cells are protoplasts.
- 29. The method of claim 22 wherein the cytokinin glucuronide is of formula I ##STR14## and is selected from the group consisting of: a compound of formula I wherein R.sup.2 is H, R.sup.3 is a .beta.-D-glucopyranuronosyl group or a salt thereof at the carboxylic acid function, R.sup.9 and X are half-bonds which together form a bond, R.sup.6 is benzyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H;
- a compound of formula I wherein R.sup.2 is H, R.sup.3 is the amide derivative of .beta.-D-glucopyranuronosyl at the carboxylic acid function thereof, R.sup.9 and X are half-bonds which together form a bond, R.sup.6 is benzyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H;
- a compound of formula I wherein R.sup.2 is H, R.sup.3 and X are half-BONDS which together form a bond, R.sup.9 is a .beta.-D-glucopyranuronosyl group or a salt thereof at the carboxylic acid function, R.sup.6 is benzyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H;
- a compound of formula I wherein R.sup.2 is H, R.sup.3 is a .beta.-D-glucopyranuronosyl group or a salt thereof at the carboxylic acid function, R.sup.9 and X are half-bonds which together form a bond, R.sup.6 is 2-isopentenyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H;
- a compound of formula I wherein R.sup.2 is an --S-.beta.-D-glucopyranuronosyl group or a salt thereof at the carboxylic acid function, R.sup.9 is H, R.sup.3 and X are half-bonds which together form a bond, R.sup.6 is 2-isopentenyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H;
- a compound of formula I wherein R.sup.2 is H, R.sup.9 is H, R.sup.3 and X are half-bonds which together form a bond, R.sup.6 is 2-isopentenyl, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is an --S-.beta.-D-glucopyranuronosyl group or a salt thereof at the carboxylic acid function; and
- a compound of formula I wherein R.sup.2 is H, R.sup.3 and X are half-bonds which together form a bond, R.sup.9 is H, R.sup.6 is a group of the formula ##STR15## or a salt thereof, R.sup.7 and Y are half-bonds which together form a bond, and R.sup.8 is H.
- 30. The method of claim 22 wherein the cytokinin glucuronide is of formula II ##STR16## wherein R.sup.1 is a cis- --CH.dbd.CH--COOH, a salt thereof or an ester derivative thereof at the carboxylic acid function, or the amide derivative of cis- and/or trans- --CH.dbd.CH--COOH, and
- R.sup.10 is a .beta.-glucupyranuronosyl group or a salt thereof or an ester or amide derivative thereof at the carboxylic acid function.
Priority Claims (2)
Number |
Date |
Country |
Kind |
1522/91 |
Aug 1991 |
DKX |
|
9304200 |
Mar 1993 |
GBX |
|
Parent Case Info
This application is a continuation in part of application Ser. No. 08/378,996, filed Jan. 27, 1995, now abandoned, which is a continuation of application Ser. No. 08/196,152, filed Feb. 23, 1994, now abandoned, which is the National Stage of International Application PCT/DK92/00252, filed Aug. 27, 1992, and application Ser. No. 08/505,302, filed Oct. 3, 1995, U.S. Pat. No. 5,767,378, the specifications of which are hereby incorporated by reference in their entirety.
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Related Publications (1)
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Number |
Date |
Country |
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378996 |
Jan 1995 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
196152 |
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Continuation in Parts (1)
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Number |
Date |
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Parent |
505302 |
Oct 1995 |
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