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Engineered P450 BM3 and cpADH5 coupled cascade reaction for β-oxo fatty acid methyl ester production in whole cells.
- Source :
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Enzyme and microbial technology [Enzyme Microb Technol] 2020 Aug; Vol. 138, pp. 109555. Date of Electronic Publication: 2020 Apr 03. - Publication Year :
- 2020
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Abstract
- Hydroxy- or ketone- functionalized fatty acid methyl esters (FAMEs) are important compounds for production of pharmaceuticals, vitamins, cosmetics or dietary supplements. Biocatalysis through enzymatic cascades has drawn attention to the efficient, sustainable, and greener synthetic processes. Furthermore, whole cell catalysts offer important advantages such as cofactor regeneration by cell metabolism, omission of protein purification steps and increased enzyme stability. Here, we report the first whole cell catalysis employing an engineered P450 BM3 variant and cpADH5 coupled cascade reaction for the biosynthesis of hydroxy- and keto-FAMEs. Firstly, P450 BM3 was engineered through the KnowVolution approach yielding P450 BM3 variant YE&#95;M1&#95;2, (R47S/Y51W/T235S/N239R/I401 M) which exhibited boosted performance toward methyl hexanoate. The initial oxidation rate of YE&#95;M1&#95;2 toward methyl hexanoate was determined to be 23-fold higher than the wild type enzyme and a 1.5-fold increase in methyl 3-hydroxyhexanoate production was obtained (YE&#95;M1&#95;2; 2.75 mM and WT; 1.8 mM). Subsequently, the whole cell catalyst for the synthesis of methyl 3-hydroxyhexanoate and methyl 3-oxohexanoate was constructed by combining the engineered P450 BM3 and cpADH5 variants in an artificial operon. A 2.06 mM total product formation was achieved by the whole cell catalyst including co-expressed channel protein, FhuA and co-solvent addition. Moreover, the generated whole cell biocatalyst also accepted methyl valerate, methyl heptanoate as well as methyl octanoate as substrates and yielded ω-1 ketones as the main product.<br /> (Copyright © 2020. Published by Elsevier Inc.)
- Subjects :
- Alcohol Dehydrogenase genetics
Bacillus megaterium enzymology
Bacillus megaterium genetics
Bacterial Outer Membrane Proteins genetics
Bacterial Outer Membrane Proteins metabolism
Biocatalysis
Candida parapsilosis enzymology
Candida parapsilosis genetics
Caproates metabolism
Cytochrome P-450 Enzyme System chemistry
Cytochrome P-450 Enzyme System genetics
Directed Molecular Evolution
Escherichia coli genetics
Escherichia coli metabolism
Escherichia coli Proteins genetics
Escherichia coli Proteins metabolism
Esters chemistry
Fatty Acids chemistry
Hydroxylation
Operon
Substrate Specificity
Alcohol Dehydrogenase metabolism
Cytochrome P-450 Enzyme System metabolism
Esters metabolism
Fatty Acids biosynthesis
Subjects
Details
- Language :
- English
- ISSN :
- 1879-0909
- Volume :
- 138
- Database :
- MEDLINE
- Journal :
- Enzyme and microbial technology
- Publication Type :
- Academic Journal
- Accession number :
- 32527525
- Full Text :
- https://doi.org/10.1016/j.enzmictec.2020.109555