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COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase

In eukaryotes, cellular respiration is driven by mitochondrial cytochrome c oxidase (CcO), an enzyme complex that requires copper cofactors for its catalytic activity. Insertion of copper into its catalytically active subunits, including COX2, is a complex process that requires metallochaperones and...

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Autores principales: Soma, Shivatheja, Morgada, Marcos N., Naik, Mandar T., Boulet, Aren, Roesler, Anna A., Dziuba, Nathaniel, Ghosh, Alok, Yu, Qinhong, Lindahl, Paul A., Ames, James B., Leary, Scot C., Vila, Alejandro J., Gohil, Vishal M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946597/
https://www.ncbi.nlm.nih.gov/pubmed/31851937
http://dx.doi.org/10.1016/j.celrep.2019.11.054
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author Soma, Shivatheja
Morgada, Marcos N.
Naik, Mandar T.
Boulet, Aren
Roesler, Anna A.
Dziuba, Nathaniel
Ghosh, Alok
Yu, Qinhong
Lindahl, Paul A.
Ames, James B.
Leary, Scot C.
Vila, Alejandro J.
Gohil, Vishal M.
author_facet Soma, Shivatheja
Morgada, Marcos N.
Naik, Mandar T.
Boulet, Aren
Roesler, Anna A.
Dziuba, Nathaniel
Ghosh, Alok
Yu, Qinhong
Lindahl, Paul A.
Ames, James B.
Leary, Scot C.
Vila, Alejandro J.
Gohil, Vishal M.
author_sort Soma, Shivatheja
collection PubMed
description In eukaryotes, cellular respiration is driven by mitochondrial cytochrome c oxidase (CcO), an enzyme complex that requires copper cofactors for its catalytic activity. Insertion of copper into its catalytically active subunits, including COX2, is a complex process that requires metallochaperones and redox proteins including SCO1, SCO2, and COA6, a recently discovered protein whose molecular function is unknown. To uncover the molecular mechanism by which COA6 and SCO proteins mediate copper delivery to COX2, we have solved the solution structure of COA6, which reveals a coiled-coil-helix-coiled-coil-helix domain typical of redox-active proteins found in the mitochondrial inter-membrane space. Accordingly, we demonstrate that COA6 can reduce the copper-coordinating disulfides of its client proteins, SCO1 and COX2, allowing for copper binding. Finally, our determination of the interaction surfaces and reduction potentials of COA6 and its client proteins provides a mechanism of how metallochaperone and disulfide reductase activities are coordinated to deliver copper to CcO.
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spelling pubmed-69465972020-01-07 COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase Soma, Shivatheja Morgada, Marcos N. Naik, Mandar T. Boulet, Aren Roesler, Anna A. Dziuba, Nathaniel Ghosh, Alok Yu, Qinhong Lindahl, Paul A. Ames, James B. Leary, Scot C. Vila, Alejandro J. Gohil, Vishal M. Cell Rep Article In eukaryotes, cellular respiration is driven by mitochondrial cytochrome c oxidase (CcO), an enzyme complex that requires copper cofactors for its catalytic activity. Insertion of copper into its catalytically active subunits, including COX2, is a complex process that requires metallochaperones and redox proteins including SCO1, SCO2, and COA6, a recently discovered protein whose molecular function is unknown. To uncover the molecular mechanism by which COA6 and SCO proteins mediate copper delivery to COX2, we have solved the solution structure of COA6, which reveals a coiled-coil-helix-coiled-coil-helix domain typical of redox-active proteins found in the mitochondrial inter-membrane space. Accordingly, we demonstrate that COA6 can reduce the copper-coordinating disulfides of its client proteins, SCO1 and COX2, allowing for copper binding. Finally, our determination of the interaction surfaces and reduction potentials of COA6 and its client proteins provides a mechanism of how metallochaperone and disulfide reductase activities are coordinated to deliver copper to CcO. 2019-12-17 /pmc/articles/PMC6946597/ /pubmed/31851937 http://dx.doi.org/10.1016/j.celrep.2019.11.054 Text en This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Soma, Shivatheja
Morgada, Marcos N.
Naik, Mandar T.
Boulet, Aren
Roesler, Anna A.
Dziuba, Nathaniel
Ghosh, Alok
Yu, Qinhong
Lindahl, Paul A.
Ames, James B.
Leary, Scot C.
Vila, Alejandro J.
Gohil, Vishal M.
COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title_full COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title_fullStr COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title_full_unstemmed COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title_short COA6 Is Structurally Tuned to Function as a Thiol-Disulfide Oxidoreductase in Copper Delivery to Mitochondrial Cytochrome c Oxidase
title_sort coa6 is structurally tuned to function as a thiol-disulfide oxidoreductase in copper delivery to mitochondrial cytochrome c oxidase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946597/
https://www.ncbi.nlm.nih.gov/pubmed/31851937
http://dx.doi.org/10.1016/j.celrep.2019.11.054
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