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Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase

Electron bifurcation is a fundamental energy conservation mechanism in nature in which two electrons from an intermediate-potential electron donor are split so that one is sent along a high-potential pathway to a high-potential acceptor and the other is sent along a low-potential pathway to a low-po...

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Autores principales: Furlan, Chris, Chongdar, Nipa, Gupta, Pooja, Lubitz, Wolfgang, Ogata, Hideaki, Blaza, James N, Birrell, James A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499530/
https://www.ncbi.nlm.nih.gov/pubmed/36018003
http://dx.doi.org/10.7554/eLife.79361
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author Furlan, Chris
Chongdar, Nipa
Gupta, Pooja
Lubitz, Wolfgang
Ogata, Hideaki
Blaza, James N
Birrell, James A
author_facet Furlan, Chris
Chongdar, Nipa
Gupta, Pooja
Lubitz, Wolfgang
Ogata, Hideaki
Blaza, James N
Birrell, James A
author_sort Furlan, Chris
collection PubMed
description Electron bifurcation is a fundamental energy conservation mechanism in nature in which two electrons from an intermediate-potential electron donor are split so that one is sent along a high-potential pathway to a high-potential acceptor and the other is sent along a low-potential pathway to a low-potential acceptor. This process allows endergonic reactions to be driven by exergonic ones and is an alternative, less recognized, mechanism of energy coupling to the well-known chemiosmotic principle. The electron-bifurcating [FeFe] hydrogenase from Thermotoga maritima (HydABC) requires both NADH and ferredoxin to reduce protons generating hydrogen. The mechanism of electron bifurcation in HydABC remains enigmatic in spite of intense research efforts over the last few years. Structural information may provide the basis for a better understanding of spectroscopic and functional information. Here, we present a 2.3 Å electron cryo-microscopy structure of HydABC. The structure shows a heterododecamer composed of two independent ‘halves’ each made of two strongly interacting HydABC heterotrimers connected via a [4Fe–4S] cluster. A central electron transfer pathway connects the active sites for NADH oxidation and for proton reduction. We identified two conformations of a flexible iron–sulfur cluster domain: a ‘closed bridge’ and an ‘open bridge’ conformation, where a Zn(2+) site may act as a ‘hinge’ allowing domain movement. Based on these structural revelations, we propose a possible mechanism of electron bifurcation in HydABC where the flavin mononucleotide serves a dual role as both the electron bifurcation center and as the NAD(+) reduction/NADH oxidation site.
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spelling pubmed-94995302022-09-23 Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase Furlan, Chris Chongdar, Nipa Gupta, Pooja Lubitz, Wolfgang Ogata, Hideaki Blaza, James N Birrell, James A eLife Biochemistry and Chemical Biology Electron bifurcation is a fundamental energy conservation mechanism in nature in which two electrons from an intermediate-potential electron donor are split so that one is sent along a high-potential pathway to a high-potential acceptor and the other is sent along a low-potential pathway to a low-potential acceptor. This process allows endergonic reactions to be driven by exergonic ones and is an alternative, less recognized, mechanism of energy coupling to the well-known chemiosmotic principle. The electron-bifurcating [FeFe] hydrogenase from Thermotoga maritima (HydABC) requires both NADH and ferredoxin to reduce protons generating hydrogen. The mechanism of electron bifurcation in HydABC remains enigmatic in spite of intense research efforts over the last few years. Structural information may provide the basis for a better understanding of spectroscopic and functional information. Here, we present a 2.3 Å electron cryo-microscopy structure of HydABC. The structure shows a heterododecamer composed of two independent ‘halves’ each made of two strongly interacting HydABC heterotrimers connected via a [4Fe–4S] cluster. A central electron transfer pathway connects the active sites for NADH oxidation and for proton reduction. We identified two conformations of a flexible iron–sulfur cluster domain: a ‘closed bridge’ and an ‘open bridge’ conformation, where a Zn(2+) site may act as a ‘hinge’ allowing domain movement. Based on these structural revelations, we propose a possible mechanism of electron bifurcation in HydABC where the flavin mononucleotide serves a dual role as both the electron bifurcation center and as the NAD(+) reduction/NADH oxidation site. eLife Sciences Publications, Ltd 2022-08-26 /pmc/articles/PMC9499530/ /pubmed/36018003 http://dx.doi.org/10.7554/eLife.79361 Text en © 2022, Furlan, Chongdar et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Furlan, Chris
Chongdar, Nipa
Gupta, Pooja
Lubitz, Wolfgang
Ogata, Hideaki
Blaza, James N
Birrell, James A
Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title_full Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title_fullStr Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title_full_unstemmed Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title_short Structural insight on the mechanism of an electron-bifurcating [FeFe] hydrogenase
title_sort structural insight on the mechanism of an electron-bifurcating [fefe] hydrogenase
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499530/
https://www.ncbi.nlm.nih.gov/pubmed/36018003
http://dx.doi.org/10.7554/eLife.79361
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