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Reversing an Extracellular Electron Transfer Pathway for Electrode-Driven Acetoin Reduction

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논문

Reversing an Extracellular Electron Transfer Pathway for Electrode-Driven Acetoin Reduction

학술지

ACS Synthetic biology

저자명

Tefft, Nicholas M.; TerAvest, Michaela A.

초록

<P>Microbial electrosynthesis is an emerging technology with the potential to simultaneously store renewably generated energy, fix carbon dioxide, and produce high-value organic compounds. However, limited understanding of the route of electrons into the cell remains an obstacle to developing a robust microbial electrosynthesis platform. To address this challenge, we leveraged the native extracellular electron transfer pathway in <I>Shewanella oneidensis</I> MR-1 to connect an extracellular electrode with an intracellular reduction reaction. The system uses native Mtr proteins to transfer electrons from an electrode to the inner membrane quinone pool. Subsequently, electrons are transferred from quinones to NAD<SUP>+</SUP> by native NADH dehydrogenases. This reverse functioning of NADH dehydrogenases is thermodynamically unfavorable; therefore, we added a light-driven proton pump (proteorhodopsin) to generate proton-motive force to drive this activity. Finally, we use reduction of acetoin to 2,3-butanediol via a heterologous butanediol dehydrogenase (Bdh) as an electron sink. Bdh is an NADH-dependent enzyme; therefore, observation of acetoin reduction supports our hypothesis that cathodic electrons are transferred to intracellular NAD<SUP>+</SUP>. Multiple lines of evidence indicate proper functioning of the engineered electrosynthesis system: electron flux from the cathode is influenced by both light and acetoin availability, and 2,3-butanediol production is highest when both light and a poised electrode are present. Using a hydrogenase-deficient <I>S. oneidensis</I> background strain resulted in a stronger correlation between electron transfer and 2,3-butanediol production, suggesting that hydrogen production is an off-target electron sink in the wild-type background. This system represents a promising step toward a genetically engineered microbial electrosynthesis platform and will enable a new focus on synthesis of specific compounds using electrical energy.</P><BR>[FIG OMISSION]</BR>

발행연도

2019

발행기관

American Chemical Society

라이선스

cc-by-nc

ISSN

2161-5063

8

7

페이지

pp.1590-1600

주제어

Shewanella oneidensis; electrosynthesis; bioelectrochemical systems; proteorhodopsin

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1 2023-12-11
2 2023-12-11

논문; 2019-06-07

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