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A short-chain carbonyl reductase mutant is an efficient catalyst in the production of (R)-1,3-butanediol

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논문

A short-chain carbonyl reductase mutant is an efficient catalyst in the production of (R)-1,3-butanediol

학술지

Microbial biotechnology

저자명

Guo, Xiaoyan; Gao, Yunfang; Liu, Fangzheng; Tao, Yong; Jin, Haibo; Wang, Jianjun; Wu, Sheng

초록

<P><B>Abstract</B></P><P>R&#x2010;1,3&#x2010;butanediol (R&#x2010;1,3&#x2010;BDO) is an important chiral intermediate of penem and carbapenem synthesis. Among the different synthesis methods to obtain pure enantiomer R&#x2010;1,3&#x2010;BDO, oxidation&#x2013;reduction cascades catalysed by enzymes are promising strategies for its production. Dehydrogenases have been used for the reduction step, but the enantio&#x2010;selectivity is not high enough for further organic synthesis efforts. Here, a short&#x2010;chain carbonyl reductase (LnRCR) was evaluated for the reduction step and developed via protein engineering. After docking result analysis with the substrate 4&#x2010;hydroxy&#x2010;2&#x2010;butanone (4H2B), residues were selected for virtual mutagenesis, their substrate&#x2010;binding energies were compared, and four sites were selected for saturation mutagenesis. High&#x2010;throughput screening helped identify a Ser154Lys mutant which increased the catalytic efficiency by 115% compared to the parent enzyme. Computer&#x2010;aided simulations indicated that after single residue replacement, movements in two flexible areas (VTDPAF and SVGFANK) facilitated the volumetric compression of the 4H2B&#x2010;binding pocket. The number of hydrogen bonds between the stabilized 4H2B&#x2010;binding pocket of the mutant enzyme and substrate was higher (from four to six) than the wild&#x2010;type enzyme, while the substrate&#x2010;binding energy was decreased (from &#x2212;17.0&nbsp;kJ/mol to &#x2212;29.1&nbsp;kJ/mol). Consequently, the catalytic efficiency increased by approximately 115% and enantio&#x2010;selectivity increased from 95% to 99%. Our findings indicate that compact and stable substrate&#x2010;binding pockets are critical for enzyme catalysis. Lastly, the utilization of a microbe expressing the Ser154Lys mutant enzyme was proven to be a robust process to conduct the oxidation&#x2013;reduction cascade at larger scales.</P>

발행연도

2023

발행기관

John Wiley and Sons Inc.

ISSN

1751-7907

ISSN

1751-7915

16

6

페이지

pp.1333-1343

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1 2023-12-11

논문; 2023-06-01

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