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Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes

Thiosulfate dehydrogenase (TsdA) catalyzes the oxidation of two thiosulfate molecules to form tetrathionate and is predicted to use an unusual cysteine-ligated heme as the catalytic cofactor. We have determined the structure of Allochromatium vinosum TsdA to a resolution of 1.3 Å. This structure con...

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Autores principales: Grabarczyk, Daniel B., Chappell, Paul E., Eisel, Bianca, Johnson, Steven, Lea, Susan M., Berks, Ben C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4423706/
https://www.ncbi.nlm.nih.gov/pubmed/25673696
http://dx.doi.org/10.1074/jbc.M114.618025
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author Grabarczyk, Daniel B.
Chappell, Paul E.
Eisel, Bianca
Johnson, Steven
Lea, Susan M.
Berks, Ben C.
author_facet Grabarczyk, Daniel B.
Chappell, Paul E.
Eisel, Bianca
Johnson, Steven
Lea, Susan M.
Berks, Ben C.
author_sort Grabarczyk, Daniel B.
collection PubMed
description Thiosulfate dehydrogenase (TsdA) catalyzes the oxidation of two thiosulfate molecules to form tetrathionate and is predicted to use an unusual cysteine-ligated heme as the catalytic cofactor. We have determined the structure of Allochromatium vinosum TsdA to a resolution of 1.3 Å. This structure confirms the active site heme ligation, identifies a thiosulfate binding site within the active site cavity, and reveals an electron transfer route from the catalytic heme, through a second heme group to the external electron acceptor. We provide multiple lines of evidence that the catalytic reaction proceeds through the intermediate formation of a S-thiosulfonate derivative of the heme cysteine ligand: the cysteine is reactive and is accessible to electrophilic attack; cysteine S-thiosulfonate is formed by the addition of thiosulfate or following the reverse reaction with tetrathionate; the S-thiosulfonate modification is removed through catalysis; and alkylating the cysteine blocks activity. Active site amino acid residues required for catalysis were identified by mutagenesis and are inferred to also play a role in stabilizing the S-thiosulfonate intermediate. The enzyme SoxAX, which catalyzes the first step in the bacterial Sox thiosulfate oxidation pathway, is homologous to TsdA and can be inferred to use a related catalytic mechanism.
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spelling pubmed-44237062015-05-12 Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes Grabarczyk, Daniel B. Chappell, Paul E. Eisel, Bianca Johnson, Steven Lea, Susan M. Berks, Ben C. J Biol Chem Enzymology Thiosulfate dehydrogenase (TsdA) catalyzes the oxidation of two thiosulfate molecules to form tetrathionate and is predicted to use an unusual cysteine-ligated heme as the catalytic cofactor. We have determined the structure of Allochromatium vinosum TsdA to a resolution of 1.3 Å. This structure confirms the active site heme ligation, identifies a thiosulfate binding site within the active site cavity, and reveals an electron transfer route from the catalytic heme, through a second heme group to the external electron acceptor. We provide multiple lines of evidence that the catalytic reaction proceeds through the intermediate formation of a S-thiosulfonate derivative of the heme cysteine ligand: the cysteine is reactive and is accessible to electrophilic attack; cysteine S-thiosulfonate is formed by the addition of thiosulfate or following the reverse reaction with tetrathionate; the S-thiosulfonate modification is removed through catalysis; and alkylating the cysteine blocks activity. Active site amino acid residues required for catalysis were identified by mutagenesis and are inferred to also play a role in stabilizing the S-thiosulfonate intermediate. The enzyme SoxAX, which catalyzes the first step in the bacterial Sox thiosulfate oxidation pathway, is homologous to TsdA and can be inferred to use a related catalytic mechanism. American Society for Biochemistry and Molecular Biology 2015-04-03 2015-02-11 /pmc/articles/PMC4423706/ /pubmed/25673696 http://dx.doi.org/10.1074/jbc.M114.618025 Text en © 2015 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Enzymology
Grabarczyk, Daniel B.
Chappell, Paul E.
Eisel, Bianca
Johnson, Steven
Lea, Susan M.
Berks, Ben C.
Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title_full Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title_fullStr Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title_full_unstemmed Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title_short Mechanism of Thiosulfate Oxidation in the SoxA Family of Cysteine-ligated Cytochromes
title_sort mechanism of thiosulfate oxidation in the soxa family of cysteine-ligated cytochromes
topic Enzymology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4423706/
https://www.ncbi.nlm.nih.gov/pubmed/25673696
http://dx.doi.org/10.1074/jbc.M114.618025
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