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Thiolase engineering for enhanced butanol production in Clostridium acetobutylicum

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논문

Thiolase engineering for enhanced butanol production in Clostridium acetobutylicum

학술지

Biotechnology and bioengineering

저자명

Mann, Miriam S.; Lü tke‐ Eversloh, Tina

초록

<P><B>Abstract</B></P><P>Biosynthetic thiolases catalyze the condensation of two molecules acetyl&#8208;CoA to acetoacetyl&#8208;CoA and represent key enzymes for carbon&ndash;carbon bond forming metabolic pathways. An important biotechnological example of such a pathway is the clostridial <I>n</I>&#8208;butanol production, comprising various natural constraints that limit titer, yield, and productivity. In this study, the thiolase of <I>Clostridium acetobutylicum</I>, the model organism for solventogenic clostridia, was specifically engineered for reduced sensitivity towards its physiological inhibitor coenzyme A (CoA&#8208;SH). A high&#8208;throughput screening assay in 96&#8208;well microtiter plates was developed employing <I>Escherichia coli</I> as host cells for expression of a mutant thiolase gene library. Screening of this library resulted in the identification of a thiolase derivative with significantly increased activity in the presence of free CoA&#8208;SH. This optimized thiolase comprised three amino acid substitutions (R133G, H156N, G222V) and its gene was expressed in <I>C. acetobutylicum</I> ATCC 824 to assess the effect of reduced CoA&#8208;SH sensitivity on solvent production. In addition to a clearly delayed ethanol and acetone formation, the ethanol and butanol titers were increased by 46% and 18%, respectively, while the final acetone concentrations were similar to the vector control strain. These results demonstrate that thiolase engineering constitutes a suitable methodology applicable to improve clostridial butanol production, but other biosynthetic pathways involving thiolase&#8208;mediated carbon flux limitations might also be subjected to this new metabolic engineering approach. Biotechnol. Bioeng. 2013; 110: 887&ndash;897. &copy; 2012 Wiley Periodicals, Inc.</P>

발행연도

2013

발행기관

Wiley Subscription Services, Inc., A Wiley Company

ISSN

0006-3592

ISSN

1097-0290

110

3

페이지

pp.887-897

주제어

biofuel; ABE fermentation; metabolic engineering; coenzyme A inhibition; high&#x2010; throughput screening;

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1 2023-12-11

논문; 2013-12-31

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