Pfleger-Lab/Metabolic-Modeling---Yield-Analysis-of-PhaG
- Univ. of Wisconsin, Madison, WI (United States)
Microbial lipid metabolism is an attractive route for producing oleochemicals. The predominant strategy centers on heterologous thioesterases to synthesize desired chain-length fatty acids. To convert acids to oleochemicals (e.g., fatty alcohols, ketones), the narrowed fatty acid pool needs to be reactivated as coenzyme A thioesters at cost of one ATP per reactivation – an expense that could be saved if the acyl-chain was directly transferred from ACP- to CoA-thioester. Here, we demonstrate such an alternative acyl-transferase strategy by heterologous expression of PhaG, an enzyme first identified in Pseudomonads, that transfers 3-hydroxy acyl-chains between acyl-carrier protein and coenzyme A thioester forms for creating polyhydroxyalkanoate monomers. We use it to create a pool of acyl-CoA’s that can be redirected to oleochemical products. Through bioprospecting, mutagenesis, and metabolic engineering, we develop three strains of Escherichia coli capable of producing over 1 g/L of medium-chain free fatty acids, fatty alcohols, and methyl ketones.
- Short Name / Acronym:
- Metabolic-Modeling---Yield-Analysis-of-PhaG
- Software Type:
- Scientific
- License(s):
- GNU General Public License v3.0
- Research Organization:
- Center for Advanced Bioenergy and Bioproduct Innovation
- Sponsoring Organization:
- USDOE Office of Science (SC), Biological and Environmental Research (BER)Primary Award/Contract Number:SC0018420
- DOE Contract Number:
- SC0018420
- Code ID:
- 147097
- OSTI ID:
- code-147097
- Country of Origin:
- United States
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Data for "Metabolic Engineering Strategies to Produce Medium-Chain Oleochemicals via Acyl-ACP:CoA Transacylase Activity"
Metabolic engineering strategies to produce medium-chain oleochemicals via acyl-ACP:CoA transacylase activity
Dataset
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Wed Feb 23 19:00:00 EST 2022
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OSTI ID:3015970
Metabolic engineering strategies to produce medium-chain oleochemicals via acyl-ACP:CoA transacylase activity
Journal Article
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Thu Mar 24 20:00:00 EDT 2022
· Nature Communications
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OSTI ID:1857884