Patent classifications
C12P7/22
SYSTEM AND METHOD FOR INCREASED ALCOHOL TOLERANCE AND PRODUCTION IN YEAST
A method for producing metabolites that are heavy alcohols, and particularly branched-chain alcohols is provided, involving contacting a suitable substrate with recombinant microorganisms. The microorganisms contain at least one deletion, disruptions, or mutations from the GLN gene family, VPS gene family, GNP gene family, AVT gene family, GCN gene family, or YDR391C, and combinations thereof, and overproduce the heavy alcohol as compared to a wild-type yeast strain.
SYSTEM AND METHOD FOR INCREASED ALCOHOL TOLERANCE AND PRODUCTION IN YEAST
A method for producing metabolites that are heavy alcohols, and particularly branched-chain alcohols is provided, involving contacting a suitable substrate with recombinant microorganisms. The microorganisms contain at least one deletion, disruptions, or mutations from the GLN gene family, VPS gene family, GNP gene family, AVT gene family, GCN gene family, or YDR391C, and combinations thereof, and overproduce the heavy alcohol as compared to a wild-type yeast strain.
YEAST CELL WALL-DERIVED DECOMPOSITION-CONTAINING COMPOSITION, PRODUCTION METHOD THEREFOR, AND USAGE THEREFOR
Provided is a method for producing a yeast cell wall-derived decomposition product-containing composition, the method including enzymatically treating a cell wall of yeast with exoglucanase.
Ketoreductase polypeptides for the reduction of acetophenones
The present disclosure provides engineered ketoreductase enzymes having improved properties as compared to a naturally occurring wild-type ketoreductase enzyme. Also provided are polynucleotides encoding the engineered ketoreductase enzymes, host cells capable of expressing the engineered ketoreductase enzymes, and methods of using the engineered ketoreductase enzymes to synthesize a variety of chiral compounds.
Ketoreductase polypeptides for the reduction of acetophenones
The present disclosure provides engineered ketoreductase enzymes having improved properties as compared to a naturally occurring wild-type ketoreductase enzyme. Also provided are polynucleotides encoding the engineered ketoreductase enzymes, host cells capable of expressing the engineered ketoreductase enzymes, and methods of using the engineered ketoreductase enzymes to synthesize a variety of chiral compounds.
Biosynthetic platform for the production of cannabinoids and other prenylated compounds
Provided is an enzyme useful for prenylation and recombinant pathways for the production of cannabinoids, cannabinoid precursors and other prenylated chemicals in a cell free system as well and recombinant microorganisms that catalyze the reactions.
Biosynthetic platform for the production of cannabinoids and other prenylated compounds
Provided is an enzyme useful for prenylation and recombinant pathways for the production of cannabinoids, cannabinoid precursors and other prenylated chemicals in a cell free system as well and recombinant microorganisms that catalyze the reactions.
Method for production of sugar alcohol from red algae
The present invention relates to a method for chemical production of 3,6-anhydro-L-galactitol (L-AHGoI), which is a novel sugar alcohol, and agarobititol (ABol), which is a disaccharide having the same agarobititol as a reductant end thereof, from sea algae.
Method for differentiating cannabis plant cultivars based on cannabinoid synthase paralogs
Compositions and methods for providing desired cannabinoid content in cannabis plants. More particularly, the invention relates to compositions and methods for using cannabinoid synthase paralogs as guidance for breeding cannabis plants with a desired cannabinoid content, including but not limited to cultivars, varieties, lines and methods of breeding the same for commercial use.
Method for differentiating cannabis plant cultivars based on cannabinoid synthase paralogs
Compositions and methods for providing desired cannabinoid content in cannabis plants. More particularly, the invention relates to compositions and methods for using cannabinoid synthase paralogs as guidance for breeding cannabis plants with a desired cannabinoid content, including but not limited to cultivars, varieties, lines and methods of breeding the same for commercial use.