Patent classifications
C12P17/08
Microorganisms and methods for the production of caprolactone
The invention provides non-naturally occurring microbial organisms containing caprolactone pathways having at least one exogenous nucleic acid encoding a butadiene pathway enzyme expressed in a sufficient amount to produce caprolactone. The invention additionally provides methods of using such microbial organisms to produce caprolactone by culturing a non-naturally occurring microbial organism containing caprolactone pathways as described herein under conditions and for a sufficient period of time to produce caprolactone.
Microorganisms and methods for the production of caprolactone
The invention provides non-naturally occurring microbial organisms containing caprolactone pathways having at least one exogenous nucleic acid encoding a butadiene pathway enzyme expressed in a sufficient amount to produce caprolactone. The invention additionally provides methods of using such microbial organisms to produce caprolactone by culturing a non-naturally occurring microbial organism containing caprolactone pathways as described herein under conditions and for a sufficient period of time to produce caprolactone.
HIGH YIELD ROUTE FOR THE PRODUCTION OF COMPOUNDS FROM RENEWABLE SOURCES
Provided herein are methods, compositions, and non-naturally occurring microbial organism for preparing compounds such as α-butanol, butyric acid, succinic acid, 1,4-butanediol, 1-pentanol, pentanoic acid, glutaric acid, 1,5-pentanediol, 1-hexanol, hexanoic acid, adipic acid, 1,6-hexanediol, 6-hydroxy hexanoic acid, ε-Caprolactone, 6-amino-hexanoic acid, ε-Caprolactam, hexamethylenediamine, linear fatty acids and linear fatty alcohols that are between 7-25 carbons long, linear alkanes and linear α-alkenes that are between 6-24 carbons long, sebacic acid and dodecanedioic acid comprising: a) converting a C.sub.N aldehyde and pyruvate to a C.sub.N+3 β-hydroxyketone intermediate through an aldol addition; and b) converting the C.sub.N+3 β-hydroxyketone intermediate to the compounds through enzymatic steps, or a combination of enzymatic and chemical steps.
HIGH YIELD ROUTE FOR THE PRODUCTION OF COMPOUNDS FROM RENEWABLE SOURCES
Provided herein are methods, compositions, and non-naturally occurring microbial organism for preparing compounds such as α-butanol, butyric acid, succinic acid, 1,4-butanediol, 1-pentanol, pentanoic acid, glutaric acid, 1,5-pentanediol, 1-hexanol, hexanoic acid, adipic acid, 1,6-hexanediol, 6-hydroxy hexanoic acid, ε-Caprolactone, 6-amino-hexanoic acid, ε-Caprolactam, hexamethylenediamine, linear fatty acids and linear fatty alcohols that are between 7-25 carbons long, linear alkanes and linear α-alkenes that are between 6-24 carbons long, sebacic acid and dodecanedioic acid comprising: a) converting a C.sub.N aldehyde and pyruvate to a C.sub.N+3 β-hydroxyketone intermediate through an aldol addition; and b) converting the C.sub.N+3 β-hydroxyketone intermediate to the compounds through enzymatic steps, or a combination of enzymatic and chemical steps.
NOVEL MICROALGAE HAVING HIGH LOLIOLIDE PRODUCTIVITY
The present invention relates to novel microalgae with high productivity of loliolide, in which the Scenedesmus sp. HS4 of the present invention can be used as a biological resource to produce loliolide due to its high biomass productivity and high loliolide content, and can be used as a pharmaceutical composition or cosmetic composition which requires loliolide derived from Scenedesmus sp. HS4.
NOVEL MICROALGAE HAVING HIGH LOLIOLIDE PRODUCTIVITY
The present invention relates to novel microalgae with high productivity of loliolide, in which the Scenedesmus sp. HS4 of the present invention can be used as a biological resource to produce loliolide due to its high biomass productivity and high loliolide content, and can be used as a pharmaceutical composition or cosmetic composition which requires loliolide derived from Scenedesmus sp. HS4.
Bioactive Plastics with Programmable Degradation and Microplastic Elimination
Nanoscopic dispersion of trace enzymes and random heteropolymers in plastics provides to fully functional plastics with eco-friendly microplastic elimination and programmable degradation.
Bioactive Plastics with Programmable Degradation and Microplastic Elimination
Nanoscopic dispersion of trace enzymes and random heteropolymers in plastics provides to fully functional plastics with eco-friendly microplastic elimination and programmable degradation.
Methods for selecting microbes from a diverse genetically modified library to detect and optimize the production of metabolites
The present invention relates to genetically modified bacteria and methods of optimizing genetically modified bacteria for the production of a metabolite.
Methods for selecting microbes from a diverse genetically modified library to detect and optimize the production of metabolites
The present invention relates to genetically modified bacteria and methods of optimizing genetically modified bacteria for the production of a metabolite.