Back to Search Start Over

COA6 Facilitates Cytochrome c Oxidase Biogenesis as Thiol-reductase for Copper Metallochaperones in Mitochondria.

Authors :
Pacheu-Grau, David
Wasilewski, Michał
Oeljeklaus, Silke
Gibhardt, Christine Silvia
Aich, Abhishek
Chudenkova, Margarita
Dennerlein, Sven
Deckers, Markus
Bogeski, Ivan
Warscheid, Bettina
Chacinska, Agnieszka
Rehling, Peter
Source :
Journal of Molecular Biology. Mar2020, Vol. 432 Issue 7, p2067-2079. 13p.
Publication Year :
2020

Abstract

The mitochondrial cytochrome c oxidase, the terminal enzyme of the respiratory chain, contains heme and copper centers for electron transfer. The conserved COX2 subunit contains the Cu A site, a binuclear copper center. The copper chaperones SCO1, SCO2, and COA6, are required for Cu A center formation. Loss of function of these chaperones and the concomitant cytochrome c oxidase deficiency cause severe human disorders. Here we analyzed the molecular function of COA6 and the consequences of COA6 deficiency for mitochondria. Our analyses show that loss of COA6 causes combined complex I and complex IV deficiency and impacts membrane potential-driven protein transport across the inner membrane. We demonstrate that COA6 acts as a thiol-reductase to reduce disulfide bridges of critical cysteine residues in SCO1 and SCO2. Cysteines within the CX 3 CX N H domain of SCO2 mediate its interaction with COA6 but are dispensable for SCO2–SCO1 interaction. Our analyses define COA6 as thiol-reductase, which is essential for Cu A biogenesis. Image 1 • Loss of COA6 affects respiratory chain complexes IV and I. • Decreased membrane potential-driven protein import due to loss of COA6. • Cysteine residues in the CX 3 CX N H motif of SCO2 mediate COA6 interaction. • COA6 acts as thiol reductase for copper metallochaperones during Cu A biogenesis. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00222836
Volume :
432
Issue :
7
Database :
Academic Search Index
Journal :
Journal of Molecular Biology
Publication Type :
Academic Journal
Accession number :
143160282
Full Text :
https://doi.org/10.1016/j.jmb.2020.01.036