Claims
- 1. A recombinant nucleic acid construct comprising a nucleic acid having a nucleotide sequence encoding a lactate dehydrogenase protein, wherein the lactate dehydrogenase protein is operatively linked to a promoter functional in a yeast cell from a species of genera Candida.
- 2. The recombinant nucleic acid construct of claim 1, wherein the nucleotide sequence encodes a lactate dehydrogenase protein from Bacillus megaterium.
- 3. The recombinant nucleic acid construct of claim 1, wherein the nucleotide sequence encodes a lactate dehydrogenase protein from Lactobacillus helveticus
- 4. The recombinant nucleic acid construct of claim 1, wherein the nucleotide sequence encodes a lactate dehydrogenase protein from Rhizopus oryzae.
- 5. The recombinant nucleic acid construct of claim 1, wherein the promoter is from a Candida species that is Candida sonorensis, Candida parapsilosis, Candida naeodendra, Candida methanosorbosa, Candida entomophila, Candida krusei, Candida blankii, or Candida diddensiae.
- 6. The recombinant nucleic acid construct of claim 1, further comprising a gene coding for resistance to a selective agent.
- 7. The recombinant nucleic acid construct of claim 6, wherein the gene coding for resistance to a selective agent is a bacterial neomycin resistance gene, kanamycin resistance gene, hygromycin resistance gene, or zeocin resistance gene.
- 8. The recombinant nucleic acid construct of claim 1, further comprising a gene that encodes a protein that processes carbon sources other than monosaccharide hexoses.
- 9 The recombinant nucleic acid construct of claim 8, wherein the gene encodes an alpha-galactosidase.
- 10. The recombinant nucleic acid construct of claim 9, wherein the gene is yeast MEL5.
- 11. A genetically modified cell from genera Candida, comprising at least one exogenous LDH gene.
- 12. A cell from genera Candida, transformed with the recombinant nucleic acid construct of any of claims 1-10, wherein the cell expresses the lactate dehydrogenase protein.
- 13. The cell of claim 11, wherein the cell further expresses reduced pyruvate decarboxylase (PDC) activity.
- 14. The cell of claim 13, wherein the reduced PDC activity results from deletion of at least one pyruvate decarboxylase gene.
- 15. The cell of claim 13, wherein the reduced PDC activity results from genetic disruption of at least one pyruvate decarboxylase gene.
- 16. The cell of claim 11, that is a Candida sonorensis, Candida parapsilosis, Candida naeodendra, Candida methanosorbosa, Candida entomophila, Candida krusei, Candida blankii, or Candida diddensiae cell.
- 17. The cell according to claim 12, wherein the promoter is a promoter from the Candida species of the cell.
- 18. The cell according to claim 12, wherein the promoter is a promoter from a species other than the Candida species of the cell.
- 19. A Candida cell comprising a deletion at a pdc1 gene locus, a disruption at a pdc2 gene locus and two or more copies of lactate dehydrogenase genes in the cellular genome at each of the pdc1 and pdc2 loci.
- 20 The cell of claim 19, wherein the two or more copies of lactate dehydrogenase genes are each operably linked to a promoter that is transcriptionally active in the Candida cell.
- 21. A Candida cell genetically modified to contain non-functional or deleted pdc1 orpdc2 gene, characterized by at least a 10-fold reduction of ethanol production when cultured in the presence of a defined glucose or rich glucose medium.
- 22. The cell of claim 21 further comprising a gene encoding for a lactate dehydrogenase.
- 23. The cell of claim 22 wherein the lactate dehydrogenase is operably linked to apdc1 orpdc2 promoter.
- 24. The Candida cell of claim 11, wherein the cell has increased lactic acid dehydrogenase activity relative to the Candida cell that is untransformed.
- 25. A method for producing lactic acid comprising the steps of
a) culturing a cell of claim 11 under conditions that allow the cell to proliferate; and b) fermenting the cell culture of (a) in a nutrient medium comprising a sugar, under conditions whereby the amount of the sugar converted by the cell to lactic acid is increased, relative to the amount of the sugar converted to lactic acid by an untransformed Candida cell.
- 26. The method according to claim 25, wherein the lactic acid is L-lactic acid.
- 27. The method of claim 25, wherein the cell is a Candida sonorensis cell.
- 28. The method of claim 27, wherein the cell comprises at least one lactate dehydrogenase gene that is a L. helveticus, B. megaterium, or R. oryzae lactate dehydrogenase gene, or combinations thereof.
- 29. The method of claim 25, wherein the cell is a Candida methanosorbosa cell.
- 30. The method of claim 29, wherein the cell comprises at least one lactate dehydrogenase gene that is a L. helveticus, B. megaterium, or R. oryzae lactate dehydrogenase gene, or combinations thereof.
- 31. The method of claim 25, wherein the cells are cultivated in a medium that is a buffered medium, wherein the medium is buffered to maintain a pH in the nutrient medium from about pH 5 to about pH 9.
- 32 The method of claim 25, wherein the final pH of the culture medium after lactic acid production is from about pH 2.6 to about pH 5.
- 33. The method of claim 25, wherein fermenting step is performed under an atmosphere that contains no more than 2% oxygen.
- 34. The method of claim 25, wherein the fermenting step is performed under anaerobic conditions.
- 35. The method of claim 25, wherein the sugar in the nutrient medium is one or a plurality of hexoses, one or a plurality of pentoses, or combinations thereof.
- 36. The method of claim 25, wherein the sugar in the nutrient medium is glucose, xylose, or L-arabinose, or combinations thereof.
- 37. The method of claim 36, wherein the sugar in the nutrient medium is glucose, and wherein the yield of lactic acid relative to the amount of glucose consumed by the cell is at least 60% by weight.
- 38. The method of claim 36, wherein the sugar in the nutrient medium is xylose, and wherein the yield of lactic acid relative to the amount of xylose consumed by the cell is at least 15% by weight.
- 39. The method of claim 36, wherein the sugar in the nutrient medium is L-arabinose, and wherein the yield of lactic acid relative to the amount of L-arabinose consumed by the cell is at least 20% by weight.
- 40. The method of claim 25, wherein the Candida cell is a Candida diddensiae, Candida parapsilosis, Candida naeodendra, Candida krusei, Candida blankii, Candida methanosorbosa or Candida entomophila cell.
- 41. A method of reducing pyruvate decarboxylase activity in a cell from genera Candida comprising transforming the cell with the a recombinant nucleic acid construct, wherein the nucleic acid construct comprises a selectable gene flanked by 5′ and 3′ flanking sequences from at least one pyruvate decarboxylase gene native to the genera Candida.
- 42. The method of claim 41, wherein the at least one pyruvate decarboxylase gene is selected from the group consisting of pyruvate decarboxylase 1 (pdc1), pyruvate decarboxylase 2 (pdc2), or both pdc1 and pdc2.
- 43. The method of claim 41, wherein the flanking sequences are a promoter and a terminator for at least one pyruvate decarboxylase gene native to the genera Candida.
- 44. A genetically modified Candida cell made by the method of any of claims 41, 42 or 43.
Parent Case Info
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/992,430, filed Nov. 23, 2001, which claims priority to U.S. Provisional Application Serial No. 60/252,541, filed Nov. 22, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60252541 |
Nov 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09992430 |
Nov 2001 |
US |
Child |
10154460 |
Sep 2002 |
US |