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  Principles of Sustained Enzymatic Hydrogen Oxidation in the Presence of Oxygen--The Crucial Influence of High Potential Fe-S Clusters in the Electron Relay of [NiFe]-hydrogenases

Evans, R. M., Parkin, A., Roessler, M. M., Murphy, B. J., Adamson, H., Lukey, M. J., et al. (2013). Principles of Sustained Enzymatic Hydrogen Oxidation in the Presence of Oxygen--The Crucial Influence of High Potential Fe-S Clusters in the Electron Relay of [NiFe]-hydrogenases. Journal of the American Chemical Society, 135(7), 2694-2707. doi:10.1021/ja311055d.

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 Creators:
Evans, Rhiannon M.1, Author
Parkin, Alison1, Author
Roessler, Maxie M.1, 2, Author
Murphy, Bonnie J.1, Author                 
Adamson, Hope1, Author
Lukey, Michael J.1, Author
Sargent, Frank3, Author
Volbeda, Anne4, Author
Fontecilla-Camps, Juan C.4, Author
Armstrong, Fraser A. 1, 2, Author
Affiliations:
1Department of Chemistry, University of Oxford, United Kingdom, South Parks Road, OX1 3QR Oxford, United Kingdom, ou_persistent22              
2Centre for Advanced Electron Spin Resonance, University of Oxford, United Kingdom, South Parks Road, OX1 3QR Oxford, United Kingdom, ou_persistent22              
3College of Life Sciences, University of Dundee, Dow Street, Dundee, Scotland, United Kingdom, Dundee DD1 5EH, Scotland, United Kingdom, ou_persistent22              
4Metalloproteins Unit, Institut de Biologie Structurale J.-P. Ebel, Commissariat à l’Energie Atomique-Centre National de la Recherche Scientifique-Université Joseph Fourier, Grenoble, France, 41 Rue Jules Horowitz, 38027 Grenoble, France, ou_persistent22              

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Free keywords: Redox reactions; Oxidation; Peptides and proteins; Genetics; Cluster chemistry
 Abstract: "Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can sustain high catalytic H2 oxidation activity in the presence of O2-an intruder that normally incapacitates the sulfur- and electron-rich active site. The mechanism of "O2 tolerance" involves a critical role for the Fe-S clusters of the electron relay, which is to ensure the availability-for immediate transfer back to the active site-of all of the electrons required to reduce an attacking O2 molecule completely to harmless H2O. The unique [4Fe-3S] cluster proximal to the active site is crucial because it can rapidly transfer two of the electrons needed. Here we investigate and establish the equally crucial role of the high potential medial [3Fe-4S] cluster, located >20 Å from the active site. A variant, P242C, in which the medial [3Fe-4S] cluster is replaced by a [4Fe-4S] cluster, is unable to sustain steady-state H2 oxidation activity in 1% O2. The [3Fe-4S] cluster is essential only for the first stage of complete O2 reduction, ensuring the supply of all three electrons needed to form the oxidized inactive state "Ni-B" or "Ready" (Ni(III)-OH). Potentiometric titrations show that Ni-B is easily reduced (Em ≈ +0.1 V at pH 6.0); this final stage of the O2-tolerance mechanism regenerates active enzyme, effectively completing a competitive four-electron oxidase cycle and is fast regardless of alterations at the proximal or medial clusters. As a consequence of all these factors, the enzyme's response to O2, viewed by its electrocatalytic activity in protein film electrochemistry (PFE) experiments, is merely to exhibit attenuated steady-state H2 oxidation activity; thus, O2 behaves like a reversible inhibitor rather than an agent that effectively causes irreversible inactivation. The data consolidate a rich picture of the versatile role of Fe-S clusters in electron relays and suggest that Hyd-1 can function as a proficient hydrogen oxidase.

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Language(s): eng - English
 Dates: 2012-11-092013-022013-02-112013-02-20
 Publication Status: Issued
 Pages: 14
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1021/ja311055d
 Degree: -

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Title: Journal of the American Chemical Society
  Other : JACS
  Abbreviation : J. Am. Chem. Soc.
Source Genre: Journal
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Publ. Info: Washington, DC : American Chemical Society
Pages: - Volume / Issue: 135 (7) Sequence Number: - Start / End Page: 2694 - 2707 Identifier: ISSN: 0002-7863
CoNE: https://pure.mpg.de/cone/journals/resource/954925376870