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Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C

The mitochondrial DNA mutation m.9032T>C was previously identified in patients presenting with NARP (Neuropathy Ataxia Retinitis Pigmentosa). Their clinical features had a maternal transmission and patient’s cells showed a reduced oxidative phosphorylation capacity, elevated reactive oxygen speci...

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Autores principales: Baranowska, Emilia, Niedzwiecka, Katarzyna, Panja, Chiranjit, Charles, Camille, Dautant, Alain, di Rago, Jean-Paul, Tribouillard-Tanvier, Déborah, Kucharczyk, Roza
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077503/
https://www.ncbi.nlm.nih.gov/pubmed/36434790
http://dx.doi.org/10.1093/hmg/ddac292
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author Baranowska, Emilia
Niedzwiecka, Katarzyna
Panja, Chiranjit
Charles, Camille
Dautant, Alain
di Rago, Jean-Paul
Tribouillard-Tanvier, Déborah
Kucharczyk, Roza
author_facet Baranowska, Emilia
Niedzwiecka, Katarzyna
Panja, Chiranjit
Charles, Camille
Dautant, Alain
di Rago, Jean-Paul
Tribouillard-Tanvier, Déborah
Kucharczyk, Roza
author_sort Baranowska, Emilia
collection PubMed
description The mitochondrial DNA mutation m.9032T>C was previously identified in patients presenting with NARP (Neuropathy Ataxia Retinitis Pigmentosa). Their clinical features had a maternal transmission and patient’s cells showed a reduced oxidative phosphorylation capacity, elevated reactive oxygen species (ROS) production and hyperpolarization of the mitochondrial inner membrane, providing evidence that m.9032T>C is truly pathogenic. This mutation leads to replacement of a highly conserved leucine residue with proline at position 169 of ATP synthase subunit a (L(169)P). This protein and a ring of identical c-subunits (c-ring) move protons through the mitochondrial inner membrane coupled to ATP synthesis. We herein investigated the consequences of m.9032T>C on ATP synthase in a strain of Saccharomyces cerevisiae with an equivalent mutation (L(186)P). The mutant enzyme assembled correctly but was mostly inactive as evidenced by a  > 95% drop in the rate of mitochondrial ATP synthesis and absence of significant ATP-driven proton pumping across the mitochondrial membrane. Intragenic suppressors selected from L(186)P yeast restoring ATP synthase function to varying degrees (30–70%) were identified at the original mutation site (L(186)S) or in another position of the subunit a (H(114)Q, I(118)T). In light of atomic structures of yeast ATP synthase recently described, we conclude from these results that m.9032T>C disrupts proton conduction between the external side of the membrane and the c-ring, and that H(114)Q and I(118)T enable protons to access the c-ring through a modified pathway.
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spelling pubmed-100775032023-04-07 Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C Baranowska, Emilia Niedzwiecka, Katarzyna Panja, Chiranjit Charles, Camille Dautant, Alain di Rago, Jean-Paul Tribouillard-Tanvier, Déborah Kucharczyk, Roza Hum Mol Genet Original Article The mitochondrial DNA mutation m.9032T>C was previously identified in patients presenting with NARP (Neuropathy Ataxia Retinitis Pigmentosa). Their clinical features had a maternal transmission and patient’s cells showed a reduced oxidative phosphorylation capacity, elevated reactive oxygen species (ROS) production and hyperpolarization of the mitochondrial inner membrane, providing evidence that m.9032T>C is truly pathogenic. This mutation leads to replacement of a highly conserved leucine residue with proline at position 169 of ATP synthase subunit a (L(169)P). This protein and a ring of identical c-subunits (c-ring) move protons through the mitochondrial inner membrane coupled to ATP synthesis. We herein investigated the consequences of m.9032T>C on ATP synthase in a strain of Saccharomyces cerevisiae with an equivalent mutation (L(186)P). The mutant enzyme assembled correctly but was mostly inactive as evidenced by a  > 95% drop in the rate of mitochondrial ATP synthesis and absence of significant ATP-driven proton pumping across the mitochondrial membrane. Intragenic suppressors selected from L(186)P yeast restoring ATP synthase function to varying degrees (30–70%) were identified at the original mutation site (L(186)S) or in another position of the subunit a (H(114)Q, I(118)T). In light of atomic structures of yeast ATP synthase recently described, we conclude from these results that m.9032T>C disrupts proton conduction between the external side of the membrane and the c-ring, and that H(114)Q and I(118)T enable protons to access the c-ring through a modified pathway. Oxford University Press 2022-11-26 /pmc/articles/PMC10077503/ /pubmed/36434790 http://dx.doi.org/10.1093/hmg/ddac292 Text en © The Author(s) 2022. Published by Oxford University Press. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Baranowska, Emilia
Niedzwiecka, Katarzyna
Panja, Chiranjit
Charles, Camille
Dautant, Alain
di Rago, Jean-Paul
Tribouillard-Tanvier, Déborah
Kucharczyk, Roza
Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title_full Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title_fullStr Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title_full_unstemmed Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title_short Molecular basis of diseases induced by the mitochondrial DNA mutation m.9032T>C
title_sort molecular basis of diseases induced by the mitochondrial dna mutation m.9032t>c
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077503/
https://www.ncbi.nlm.nih.gov/pubmed/36434790
http://dx.doi.org/10.1093/hmg/ddac292
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