C12Y102/01057

Methods and systems for 1-butanol production

A combination of an electrochemical device for delivering reducing equivalents to a cell, and engineered metabolic pathways within the cell capable of utilizing the electrochemically provided reducing equivalents is disclosed. Such a combination allows the production of commodity chemicals by fermentation to proceed with increased carbon efficiency.

YEAST STRAIN WITH GLUCOSE AND XYLOSE CO-UTILIZATION CAPACITY

The present specification relates to a transformed yeast strain capable of simultaneously utilizing xylose and glucose as carbon sources, a preparation method thereof and a biofuel production method using the same. The transformed yeast strain transforms a wild-type yeast strain incapable of using xylose as a carbon source and simultaneously convert glucose and xylose, thereby enabling high yield production of a biofuel. The economics and sustainability of the biofuel and biomaterial production processes can be highly enhanced by providing a strain which can easily be converted to a strain capable of producing a biofuel/material in a high yield through an additional modification.

MICROBIAL ORGANISMS FOR CONVERTING ACETYL-COA INTO CROTYL ALCOHOL AND METHODS FOR PRODUCING CROTYL ALCOHOL

The present invention provides microorganisms capable of converting acetyl-coA into crotyl alcohol as well as fermentation methods for producing crotyl alcohol, either alone, or in combination with acetone and/or isopropanol. The microorganisms may be genetically engineered to express and/or disrupt one or more of the following enzymes: acetaldehyde dehydrogenase, alcohol dehydrogenase, bifunctional acetaldehyde/alcohol dehydrogenase, aldehyde oxidoreductase, phosphotransacetylase, acetate kinase, CoA-transferase A, CoA-transferase B, acetoacetate decarboxylase, secondary alcohol dehydrogenase, butyryl-CoA dehydro genase (BCD), and/or trans-2-enoyl-CoA reductase (TER).

Electrochemical Bioreactor Module and Engineered Metabolic Pathways for 1-Butanol Production with High Carbon Efficiency

A combination of an electrochemical device for delivering reducing equivalents to a cell, and engineered metabolic pathways within the cell capable of utilizing the electrochemically provided reducing equivalents is disclosed. Such a combination allows the production of commodity chemicals by fermentation to proceed with increased carbon efficiency.

RECOMBINANT E. COLI STRAIN PRODUCING 1,3-BUTANEDIOL FROM GLUCOSE AND METHOD FOR PRODUCING 1,3-BUTANEDIOL USING SAME
20250197870 · 2025-06-19 · ·

The present invention relates to a recombinant E. coli strain producing 1,3-butanediol from glucose and a method for producing 1,3-butanediol using same, in which a recombinant E. coli strain was developed in which a gene of a pathway necessary for biosynthesis of 1,3-BDO from acetyl-CoA is cloned, and a gene of a pathway that interferes with or competes with this pathway is removed, wherein an E. coli strain was developed in which the pathways and genes involved in the conversion of glucose to acetyl COA, the regeneration rate of NADPH used as a cofactor, and the efficient use of the TCA cycle pathway, which are necessary to improve the biosynthetic efficiency of 1,3-BDO, are modified and optimized.