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Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli

The active site of [NiFe]-hydrogenases contains a strictly-conserved pendant arginine, the guanidine head group of which is suspended immediately above the Ni and Fe atoms. Replacement of this arginine (R479) in hydrogenase-2 from E. coli results in an enzyme that is isolated with a very tightly-bou...

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Autores principales: Evans, Rhiannon M., Beaton, Stephen E., Rodriguez Macia, Patricia, Pang, Yunjie, Wong, Kin Long, Kertess, Leonie, Myers, William K., Bjornsson, Ragnar, Ash, Philip A., Vincent, Kylie A., Carr, Stephen B., Armstrong, Fraser A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10430524/
https://www.ncbi.nlm.nih.gov/pubmed/37592998
http://dx.doi.org/10.1039/d2sc05641k
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author Evans, Rhiannon M.
Beaton, Stephen E.
Rodriguez Macia, Patricia
Pang, Yunjie
Wong, Kin Long
Kertess, Leonie
Myers, William K.
Bjornsson, Ragnar
Ash, Philip A.
Vincent, Kylie A.
Carr, Stephen B.
Armstrong, Fraser A.
author_facet Evans, Rhiannon M.
Beaton, Stephen E.
Rodriguez Macia, Patricia
Pang, Yunjie
Wong, Kin Long
Kertess, Leonie
Myers, William K.
Bjornsson, Ragnar
Ash, Philip A.
Vincent, Kylie A.
Carr, Stephen B.
Armstrong, Fraser A.
author_sort Evans, Rhiannon M.
collection PubMed
description The active site of [NiFe]-hydrogenases contains a strictly-conserved pendant arginine, the guanidine head group of which is suspended immediately above the Ni and Fe atoms. Replacement of this arginine (R479) in hydrogenase-2 from E. coli results in an enzyme that is isolated with a very tightly-bound diatomic ligand attached end-on to the Ni and stabilised by hydrogen bonding to the Nζ atom of the pendant lysine and one of the three additional water molecules located in the active site of the variant. The diatomic ligand is bound under oxidising conditions and is removed only after a prolonged period of reduction with H(2) and reduced methyl viologen. Once freed of the diatomic ligand, the R479K variant catalyses both H(2) oxidation and evolution but with greatly decreased rates compared to the native enzyme. Key kinetic characteristics are revealed by protein film electrochemistry: most importantly, a very low activation energy for H(2) oxidation that is not linked to an increased H/D isotope effect. Native electrocatalytic reversibility is retained. The results show that the sluggish kinetics observed for the lysine variant arise most obviously because the advantage of a more favourable low-energy pathway is massively offset by an extremely unfavourable activation entropy. Extensive efforts to establish the identity of the diatomic ligand, the tight binding of which is an unexpected further consequence of replacing the pendant arginine, prove inconclusive.
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spelling pubmed-104305242023-08-17 Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli Evans, Rhiannon M. Beaton, Stephen E. Rodriguez Macia, Patricia Pang, Yunjie Wong, Kin Long Kertess, Leonie Myers, William K. Bjornsson, Ragnar Ash, Philip A. Vincent, Kylie A. Carr, Stephen B. Armstrong, Fraser A. Chem Sci Chemistry The active site of [NiFe]-hydrogenases contains a strictly-conserved pendant arginine, the guanidine head group of which is suspended immediately above the Ni and Fe atoms. Replacement of this arginine (R479) in hydrogenase-2 from E. coli results in an enzyme that is isolated with a very tightly-bound diatomic ligand attached end-on to the Ni and stabilised by hydrogen bonding to the Nζ atom of the pendant lysine and one of the three additional water molecules located in the active site of the variant. The diatomic ligand is bound under oxidising conditions and is removed only after a prolonged period of reduction with H(2) and reduced methyl viologen. Once freed of the diatomic ligand, the R479K variant catalyses both H(2) oxidation and evolution but with greatly decreased rates compared to the native enzyme. Key kinetic characteristics are revealed by protein film electrochemistry: most importantly, a very low activation energy for H(2) oxidation that is not linked to an increased H/D isotope effect. Native electrocatalytic reversibility is retained. The results show that the sluggish kinetics observed for the lysine variant arise most obviously because the advantage of a more favourable low-energy pathway is massively offset by an extremely unfavourable activation entropy. Extensive efforts to establish the identity of the diatomic ligand, the tight binding of which is an unexpected further consequence of replacing the pendant arginine, prove inconclusive. The Royal Society of Chemistry 2023-07-25 /pmc/articles/PMC10430524/ /pubmed/37592998 http://dx.doi.org/10.1039/d2sc05641k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Evans, Rhiannon M.
Beaton, Stephen E.
Rodriguez Macia, Patricia
Pang, Yunjie
Wong, Kin Long
Kertess, Leonie
Myers, William K.
Bjornsson, Ragnar
Ash, Philip A.
Vincent, Kylie A.
Carr, Stephen B.
Armstrong, Fraser A.
Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title_full Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title_fullStr Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title_full_unstemmed Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title_short Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase ‘Hyd-2’ from Escherichia coli
title_sort comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [nife]-hydrogenase ‘hyd-2’ from escherichia coli
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10430524/
https://www.ncbi.nlm.nih.gov/pubmed/37592998
http://dx.doi.org/10.1039/d2sc05641k
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