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Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations

The catalytic mechanism of [NiFe]-hydrogenases is a subject of extensive research. Apart from at least four reaction intermediates of H(2)/H(+) cycling, there are also a number of resting states, which are formed under oxidizing conditions. Although not directly involved in the catalytic cycle, the...

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Autores principales: Caserta, Giorgio, Pelmenschikov, Vladimir, Lorent, Christian, Tadjoung Waffo, Armel F., Katz, Sagie, Lauterbach, Lars, Schoknecht, Janna, Wang, Hongxin, Yoda, Yoshitaka, Tamasaku, Kenji, Kaupp, Martin, Hildebrandt, Peter, Lenz, Oliver, Cramer, Stephen P., Zebger, Ingo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179317/
https://www.ncbi.nlm.nih.gov/pubmed/34163984
http://dx.doi.org/10.1039/d0sc05022a
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author Caserta, Giorgio
Pelmenschikov, Vladimir
Lorent, Christian
Tadjoung Waffo, Armel F.
Katz, Sagie
Lauterbach, Lars
Schoknecht, Janna
Wang, Hongxin
Yoda, Yoshitaka
Tamasaku, Kenji
Kaupp, Martin
Hildebrandt, Peter
Lenz, Oliver
Cramer, Stephen P.
Zebger, Ingo
author_facet Caserta, Giorgio
Pelmenschikov, Vladimir
Lorent, Christian
Tadjoung Waffo, Armel F.
Katz, Sagie
Lauterbach, Lars
Schoknecht, Janna
Wang, Hongxin
Yoda, Yoshitaka
Tamasaku, Kenji
Kaupp, Martin
Hildebrandt, Peter
Lenz, Oliver
Cramer, Stephen P.
Zebger, Ingo
author_sort Caserta, Giorgio
collection PubMed
description The catalytic mechanism of [NiFe]-hydrogenases is a subject of extensive research. Apart from at least four reaction intermediates of H(2)/H(+) cycling, there are also a number of resting states, which are formed under oxidizing conditions. Although not directly involved in the catalytic cycle, the knowledge of their molecular structures and reactivity is important, because these states usually accumulate in the course of hydrogenase purification and may also play a role in vivo during hydrogenase maturation. Here, we applied low-temperature infrared (cryo-IR) and nuclear resonance vibrational spectroscopy (NRVS) to the isolated catalytic subunit (HoxC) of the heterodimeric regulatory [NiFe]-hydrogenase (RH) from Ralstonia eutropha. Cryo-IR spectroscopy revealed that the HoxC protein can be enriched in almost pure resting redox states suitable for NRVS investigation. NRVS analysis of the hydrogenase catalytic center is usually hampered by strong spectral contributions of the FeS clusters of the small, electron-transferring subunit. Therefore, our approach to investigate the FeS cluster-free, (57)Fe-labeled HoxC provided an unprecedented insight into the [NiFe] site modes, revealing their contributions in a spectral range otherwise superimposed by FeS cluster-derived bands. Rationalized by density functional theory (DFT) calculations, our data provide structural descriptions of the previously uncharacterized hydroxy- and water-containing resting states. Our work highlights the relevance of cryogenic vibrational spectroscopy and DFT to elucidate the structure of barely defined redox states of the [NiFe]-hydrogenase active site.
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spelling pubmed-81793172021-06-22 Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations Caserta, Giorgio Pelmenschikov, Vladimir Lorent, Christian Tadjoung Waffo, Armel F. Katz, Sagie Lauterbach, Lars Schoknecht, Janna Wang, Hongxin Yoda, Yoshitaka Tamasaku, Kenji Kaupp, Martin Hildebrandt, Peter Lenz, Oliver Cramer, Stephen P. Zebger, Ingo Chem Sci Chemistry The catalytic mechanism of [NiFe]-hydrogenases is a subject of extensive research. Apart from at least four reaction intermediates of H(2)/H(+) cycling, there are also a number of resting states, which are formed under oxidizing conditions. Although not directly involved in the catalytic cycle, the knowledge of their molecular structures and reactivity is important, because these states usually accumulate in the course of hydrogenase purification and may also play a role in vivo during hydrogenase maturation. Here, we applied low-temperature infrared (cryo-IR) and nuclear resonance vibrational spectroscopy (NRVS) to the isolated catalytic subunit (HoxC) of the heterodimeric regulatory [NiFe]-hydrogenase (RH) from Ralstonia eutropha. Cryo-IR spectroscopy revealed that the HoxC protein can be enriched in almost pure resting redox states suitable for NRVS investigation. NRVS analysis of the hydrogenase catalytic center is usually hampered by strong spectral contributions of the FeS clusters of the small, electron-transferring subunit. Therefore, our approach to investigate the FeS cluster-free, (57)Fe-labeled HoxC provided an unprecedented insight into the [NiFe] site modes, revealing their contributions in a spectral range otherwise superimposed by FeS cluster-derived bands. Rationalized by density functional theory (DFT) calculations, our data provide structural descriptions of the previously uncharacterized hydroxy- and water-containing resting states. Our work highlights the relevance of cryogenic vibrational spectroscopy and DFT to elucidate the structure of barely defined redox states of the [NiFe]-hydrogenase active site. The Royal Society of Chemistry 2020-12-11 /pmc/articles/PMC8179317/ /pubmed/34163984 http://dx.doi.org/10.1039/d0sc05022a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Caserta, Giorgio
Pelmenschikov, Vladimir
Lorent, Christian
Tadjoung Waffo, Armel F.
Katz, Sagie
Lauterbach, Lars
Schoknecht, Janna
Wang, Hongxin
Yoda, Yoshitaka
Tamasaku, Kenji
Kaupp, Martin
Hildebrandt, Peter
Lenz, Oliver
Cramer, Stephen P.
Zebger, Ingo
Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title_full Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title_fullStr Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title_full_unstemmed Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title_short Hydroxy-bridged resting states of a [NiFe]-hydrogenase unraveled by cryogenic vibrational spectroscopy and DFT computations
title_sort hydroxy-bridged resting states of a [nife]-hydrogenase unraveled by cryogenic vibrational spectroscopy and dft computations
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179317/
https://www.ncbi.nlm.nih.gov/pubmed/34163984
http://dx.doi.org/10.1039/d0sc05022a
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