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Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation

[Image: see text] Nature utilizes [FeFe]-hydrogenase enzymes to catalyze the interconversion between H(2) and protons and electrons. Catalysis occurs at the H-cluster, a carbon monoxide-, cyanide-, and dithiomethylamine-coordinated 2Fe subcluster bridged via a cysteine to a [4Fe-4S] cluster. Biosynt...

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Autores principales: Shepard, Eric M., Byer, Amanda S., Aggarwal, Priyanka, Betz, Jeremiah N., Scott, Anna G., Shisler, Krista A., Usselman, Robert J., Eaton, Gareth R., Eaton, Sandra S., Broderick, Joan B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5490485/
https://www.ncbi.nlm.nih.gov/pubmed/28525271
http://dx.doi.org/10.1021/acs.biochem.7b00169
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author Shepard, Eric M.
Byer, Amanda S.
Aggarwal, Priyanka
Betz, Jeremiah N.
Scott, Anna G.
Shisler, Krista A.
Usselman, Robert J.
Eaton, Gareth R.
Eaton, Sandra S.
Broderick, Joan B.
author_facet Shepard, Eric M.
Byer, Amanda S.
Aggarwal, Priyanka
Betz, Jeremiah N.
Scott, Anna G.
Shisler, Krista A.
Usselman, Robert J.
Eaton, Gareth R.
Eaton, Sandra S.
Broderick, Joan B.
author_sort Shepard, Eric M.
collection PubMed
description [Image: see text] Nature utilizes [FeFe]-hydrogenase enzymes to catalyze the interconversion between H(2) and protons and electrons. Catalysis occurs at the H-cluster, a carbon monoxide-, cyanide-, and dithiomethylamine-coordinated 2Fe subcluster bridged via a cysteine to a [4Fe-4S] cluster. Biosynthesis of this unique metallocofactor is accomplished by three maturase enzymes denoted HydE, HydF, and HydG. HydE and HydG belong to the radical S-adenosylmethionine superfamily of enzymes and synthesize the nonprotein ligands of the H-cluster. These enzymes interact with HydF, a GTPase that acts as a scaffold or carrier protein during 2Fe subcluster assembly. Prior characterization of HydF demonstrated the protein exists in both dimeric and tetrameric states and coordinates both [4Fe-4S](2+/+) and [2Fe-2S](2+/+) clusters [Shepard, E. M., Byer, A. S., Betz, J. N., Peters, J. W., and Broderick, J. B. (2016) Biochemistry 55, 3514–3527]. Herein, electron paramagnetic resonance (EPR) is utilized to characterize the [2Fe-2S](+) and [4Fe-4S](+) clusters bound to HydF. Examination of spin relaxation times using pulsed EPR in HydF samples exhibiting both [4Fe-4S](+) and [2Fe-2S](+) cluster EPR signals supports a model in which the two cluster types either are bound to widely separated sites on HydF or are not simultaneously bound to a single HydF species. Gel filtration chromatographic analyses of HydF spectroscopic samples strongly suggest the [2Fe-2S](+) and [4Fe-4S](+) clusters are coordinated to the dimeric form of the protein. Lastly, we examined the 2Fe subcluster-loaded form of HydF and showed the dimeric state is responsible for [FeFe]-hydrogenase activation. Together, the results indicate a specific role for the HydF dimer in the H-cluster biosynthesis pathway.
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spelling pubmed-54904852018-05-19 Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation Shepard, Eric M. Byer, Amanda S. Aggarwal, Priyanka Betz, Jeremiah N. Scott, Anna G. Shisler, Krista A. Usselman, Robert J. Eaton, Gareth R. Eaton, Sandra S. Broderick, Joan B. Biochemistry [Image: see text] Nature utilizes [FeFe]-hydrogenase enzymes to catalyze the interconversion between H(2) and protons and electrons. Catalysis occurs at the H-cluster, a carbon monoxide-, cyanide-, and dithiomethylamine-coordinated 2Fe subcluster bridged via a cysteine to a [4Fe-4S] cluster. Biosynthesis of this unique metallocofactor is accomplished by three maturase enzymes denoted HydE, HydF, and HydG. HydE and HydG belong to the radical S-adenosylmethionine superfamily of enzymes and synthesize the nonprotein ligands of the H-cluster. These enzymes interact with HydF, a GTPase that acts as a scaffold or carrier protein during 2Fe subcluster assembly. Prior characterization of HydF demonstrated the protein exists in both dimeric and tetrameric states and coordinates both [4Fe-4S](2+/+) and [2Fe-2S](2+/+) clusters [Shepard, E. M., Byer, A. S., Betz, J. N., Peters, J. W., and Broderick, J. B. (2016) Biochemistry 55, 3514–3527]. Herein, electron paramagnetic resonance (EPR) is utilized to characterize the [2Fe-2S](+) and [4Fe-4S](+) clusters bound to HydF. Examination of spin relaxation times using pulsed EPR in HydF samples exhibiting both [4Fe-4S](+) and [2Fe-2S](+) cluster EPR signals supports a model in which the two cluster types either are bound to widely separated sites on HydF or are not simultaneously bound to a single HydF species. Gel filtration chromatographic analyses of HydF spectroscopic samples strongly suggest the [2Fe-2S](+) and [4Fe-4S](+) clusters are coordinated to the dimeric form of the protein. Lastly, we examined the 2Fe subcluster-loaded form of HydF and showed the dimeric state is responsible for [FeFe]-hydrogenase activation. Together, the results indicate a specific role for the HydF dimer in the H-cluster biosynthesis pathway. American Chemical Society 2017-05-19 2017-06-27 /pmc/articles/PMC5490485/ /pubmed/28525271 http://dx.doi.org/10.1021/acs.biochem.7b00169 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Shepard, Eric M.
Byer, Amanda S.
Aggarwal, Priyanka
Betz, Jeremiah N.
Scott, Anna G.
Shisler, Krista A.
Usselman, Robert J.
Eaton, Gareth R.
Eaton, Sandra S.
Broderick, Joan B.
Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title_full Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title_fullStr Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title_full_unstemmed Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title_short Electron Spin Relaxation and Biochemical Characterization of the Hydrogenase Maturase HydF: Insights into [2Fe-2S] and [4Fe-4S] Cluster Communication and Hydrogenase Activation
title_sort electron spin relaxation and biochemical characterization of the hydrogenase maturase hydf: insights into [2fe-2s] and [4fe-4s] cluster communication and hydrogenase activation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5490485/
https://www.ncbi.nlm.nih.gov/pubmed/28525271
http://dx.doi.org/10.1021/acs.biochem.7b00169
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