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Addition of formate dehydrogenase increases the production of renewable alkane from an engineered metabolic pathway

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논문

Addition of formate dehydrogenase increases the production of renewable alkane from an engineered metabolic pathway

학술지

The Journal of biological chemistry

저자명

Jaroensuk, Juthamas; Intasian, Pattarawan; Kiattisewee, Cholpisit; Munkajohnpon, Pobthum; Chunthaboon, Paweenapon; Buttranon, Supacha; Trisrivirat, Duangthip; Wongnate, Thanyaporn; Maenpuen, Somchart; Tinikul, Ruchanok; Chaiyen, Pimchai

초록

<P>An engineered metabolic pathway consisting of reactions that convert fatty acids to aldehydes and eventually alkanes would provide a means to produce biofuels from renewable energy sources. The enzyme aldehyde-deformylating oxygenase (ADO) catalyzes the conversion of aldehydes and oxygen to alkanes and formic acid and uses oxygen and a cellular reductant such as ferredoxin (Fd) as co-substrates. In this report, we aimed to increase ADO-mediated alkane production by converting an unused by-product, formate, to a reductant that can be used by ADO. We achieved this by including the gene (<I>fdh</I>), encoding formate dehydrogenase from <I>Xanthobacter</I> sp. 91 (<I>Xa</I>FDH), into a metabolic pathway expressed in <I>Escherichia coli</I>. Using this approach, we could increase bacterial alkane production, resulting in a conversion yield of &#x223C;50%, the highest yield reported to date. Measuring intracellular nicotinamide concentrations, we found that <I>E. coli</I> cells harboring <I>Xa</I>FDH have a significantly higher concentration of NADH and a higher NADH/NAD<SUP>+</SUP> ratio than <I>E. coli</I> cells lacking <I>Xa</I>FDH. <I>In vitro</I> analysis disclosed that ferredoxin (flavodoxin):NADP<SUP>+</SUP> oxidoreductase could use NADH to reduce Fd and thus facilitate ADO-mediated alkane production. As formic acid can decrease the cellular pH, the addition of formate dehydrogenase could also maintain the cellular pH in the neutral range, which is more suitable for alkane production. We conclude that this simple, dual-pronged approach of increasing NAD(P)H and removing extra formic acid is efficient for increasing the production of renewable alkanes via synthetic biology-based approaches.</P>

발행연도

2019

발행기관

American Society for Biochemistry and Molecular Biology

라이선스

cc-by

ISSN

0021-9258

ISSN

1083-351x

294

30

페이지

pp.11536-11548

주제어

dehydrogenase; biofuel; metabolic engineering; synthetic biology; bioenergy; enzyme; aldehyde deformylating oxygenase; alkane; formate dehydrogenase; hydrocarbon; renewables; substrate inhibition

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1 2023-12-11
3 2023-12-11

논문; 2019-07-01

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