Ethylene is a major petrochemical for which biotechnological production methods are an attractive alternative. Here we use a system based on a bacterial ethylene forming enzyme (EFE) expressed in Saccharomyces cerevisiae. Metabolic modelling performed in a previous study identified re-oxidation of NADH as a factor limiting ethylene production in S. cerevisiae. In line with this, we here found that strains with multicopy plasmid expression of the heterologous oxidases nox and Aox1 led to significantly increased specific ethylene productivity, up 12 and 36%, respectively, compared to the control strain with empty plasmid. However the productivity and yield was only improved in the AOX expressing strain compared to that of the control strain. ...
Metabolic engineering studies have generally focused on manipulating enzyme levels. However, cofacto...
Background Redox-cofactor balancing constrains product yields in anaerobic fermentation processes. T...
Background: Cyanobacteria can be metabolically engineered to convert CO2 to fuels and chemicals such...
Ethylene is a major petrochemical for which biotechnological production methods are an attractive al...
The detrimental effect of the petroleum industry on the environment combined with the threat of peak...
Biotechnological production of the traditional petrochemical ethylene is presently being explored us...
Fossil fuels are the primary feedstock for chemical and fuel production, yet they are unsustainable ...
Biosynthesis of ethylene (ethene) is mainly performed by plants and some bacteria and fungi, via two...
We have previously shown that ethylene production in Saccharomyces cerevisiae expressing the ethylen...
Ethylene is a small hydrocarbon gas widely used in the chemical industry. Annual worldwide productio...
International audienceThe pyridine nucleotides NAD(H) and NADP(H) play major roles in the formation ...
The 1-aminocyclopropane-1-carboxylic acid (ACC) dependent ethylene biosynthetic pathway of higher pl...
International audienceWe recently showed that expressing an H2O-NADH oxidase in Saccharomyces cerevi...
Background: Ethylene is one of the most used chemical monomers derived from non-renewable sources an...
Background: Metabolic engineering and synthetic biology of cyanobacteria offer a promising sustainab...
Metabolic engineering studies have generally focused on manipulating enzyme levels. However, cofacto...
Background Redox-cofactor balancing constrains product yields in anaerobic fermentation processes. T...
Background: Cyanobacteria can be metabolically engineered to convert CO2 to fuels and chemicals such...
Ethylene is a major petrochemical for which biotechnological production methods are an attractive al...
The detrimental effect of the petroleum industry on the environment combined with the threat of peak...
Biotechnological production of the traditional petrochemical ethylene is presently being explored us...
Fossil fuels are the primary feedstock for chemical and fuel production, yet they are unsustainable ...
Biosynthesis of ethylene (ethene) is mainly performed by plants and some bacteria and fungi, via two...
We have previously shown that ethylene production in Saccharomyces cerevisiae expressing the ethylen...
Ethylene is a small hydrocarbon gas widely used in the chemical industry. Annual worldwide productio...
International audienceThe pyridine nucleotides NAD(H) and NADP(H) play major roles in the formation ...
The 1-aminocyclopropane-1-carboxylic acid (ACC) dependent ethylene biosynthetic pathway of higher pl...
International audienceWe recently showed that expressing an H2O-NADH oxidase in Saccharomyces cerevi...
Background: Ethylene is one of the most used chemical monomers derived from non-renewable sources an...
Background: Metabolic engineering and synthetic biology of cyanobacteria offer a promising sustainab...
Metabolic engineering studies have generally focused on manipulating enzyme levels. However, cofacto...
Background Redox-cofactor balancing constrains product yields in anaerobic fermentation processes. T...
Background: Cyanobacteria can be metabolically engineered to convert CO2 to fuels and chemicals such...