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OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling

Autosomal Dominant Optic Atrophy (ADOA), a disease that causes blindness and other neurological disorders, is linked to OPA1 mutations. OPA1, dependent on its GTPase and GED domains, governs inner mitochondrial membrane (IMM) fusion and cristae organization, which are central to oxidative metabolism...

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Autores principales: Cartes-Saavedra, Benjamín, Macuada, Josefa, Lagos, Daniel, Arancibia, Duxan, Andrés, María E., Yu-Wai-Man, Patrick, Hajnóczky, György, Eisner, Verónica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762365/
https://www.ncbi.nlm.nih.gov/pubmed/35047497
http://dx.doi.org/10.3389/fcell.2021.774108
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author Cartes-Saavedra, Benjamín
Macuada, Josefa
Lagos, Daniel
Arancibia, Duxan
Andrés, María E.
Yu-Wai-Man, Patrick
Hajnóczky, György
Eisner, Verónica
author_facet Cartes-Saavedra, Benjamín
Macuada, Josefa
Lagos, Daniel
Arancibia, Duxan
Andrés, María E.
Yu-Wai-Man, Patrick
Hajnóczky, György
Eisner, Verónica
author_sort Cartes-Saavedra, Benjamín
collection PubMed
description Autosomal Dominant Optic Atrophy (ADOA), a disease that causes blindness and other neurological disorders, is linked to OPA1 mutations. OPA1, dependent on its GTPase and GED domains, governs inner mitochondrial membrane (IMM) fusion and cristae organization, which are central to oxidative metabolism. Mitochondrial dynamics and IMM organization have also been implicated in Ca(2+) homeostasis and signaling but the specific involvements of OPA1 in Ca(2+) dynamics remain to be established. Here we studied the possible outcomes of OPA1 and its ADOA-linked mutations in Ca(2+) homeostasis using rescue and overexpression strategies in Opa1-deficient and wild-type murine embryonic fibroblasts (MEFs), respectively and in human ADOA-derived fibroblasts. MEFs lacking Opa1 required less Ca(2+) mobilization from the endoplasmic reticulum (ER) to induce a mitochondrial matrix [Ca(2+)] rise ([Ca(2+)](mito)). This was associated with closer ER-mitochondria contacts and no significant changes in the mitochondrial calcium uniporter complex. Patient cells carrying OPA1 GTPase or GED domain mutations also exhibited altered Ca(2+) homeostasis, and the mutations associated with lower OPA1 levels displayed closer ER-mitochondria gaps. Furthermore, in Opa1 ( −/− ) MEF background, we found that acute expression of OPA1 GTPase mutants but no GED mutants, partially restored cytosolic [Ca(2+)] ([Ca(2+)](cyto)) needed for a prompt [Ca(2+)](mito) rise. Finally, OPA1 mutants’ overexpression in WT MEFs disrupted Ca(2+) homeostasis, partially recapitulating the observations in ADOA patient cells. Thus, OPA1 modulates functional ER-mitochondria coupling likely through the OPA1 GED domain in Opa1 ( −/− ) MEFs. However, the co-existence of WT and mutant forms of OPA1 in patients promotes an imbalance of Ca(2+) homeostasis without a domain-specific effect, likely contributing to the overall ADOA progress.
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spelling pubmed-87623652022-01-18 OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling Cartes-Saavedra, Benjamín Macuada, Josefa Lagos, Daniel Arancibia, Duxan Andrés, María E. Yu-Wai-Man, Patrick Hajnóczky, György Eisner, Verónica Front Cell Dev Biol Cell and Developmental Biology Autosomal Dominant Optic Atrophy (ADOA), a disease that causes blindness and other neurological disorders, is linked to OPA1 mutations. OPA1, dependent on its GTPase and GED domains, governs inner mitochondrial membrane (IMM) fusion and cristae organization, which are central to oxidative metabolism. Mitochondrial dynamics and IMM organization have also been implicated in Ca(2+) homeostasis and signaling but the specific involvements of OPA1 in Ca(2+) dynamics remain to be established. Here we studied the possible outcomes of OPA1 and its ADOA-linked mutations in Ca(2+) homeostasis using rescue and overexpression strategies in Opa1-deficient and wild-type murine embryonic fibroblasts (MEFs), respectively and in human ADOA-derived fibroblasts. MEFs lacking Opa1 required less Ca(2+) mobilization from the endoplasmic reticulum (ER) to induce a mitochondrial matrix [Ca(2+)] rise ([Ca(2+)](mito)). This was associated with closer ER-mitochondria contacts and no significant changes in the mitochondrial calcium uniporter complex. Patient cells carrying OPA1 GTPase or GED domain mutations also exhibited altered Ca(2+) homeostasis, and the mutations associated with lower OPA1 levels displayed closer ER-mitochondria gaps. Furthermore, in Opa1 ( −/− ) MEF background, we found that acute expression of OPA1 GTPase mutants but no GED mutants, partially restored cytosolic [Ca(2+)] ([Ca(2+)](cyto)) needed for a prompt [Ca(2+)](mito) rise. Finally, OPA1 mutants’ overexpression in WT MEFs disrupted Ca(2+) homeostasis, partially recapitulating the observations in ADOA patient cells. Thus, OPA1 modulates functional ER-mitochondria coupling likely through the OPA1 GED domain in Opa1 ( −/− ) MEFs. However, the co-existence of WT and mutant forms of OPA1 in patients promotes an imbalance of Ca(2+) homeostasis without a domain-specific effect, likely contributing to the overall ADOA progress. Frontiers Media S.A. 2022-01-03 /pmc/articles/PMC8762365/ /pubmed/35047497 http://dx.doi.org/10.3389/fcell.2021.774108 Text en Copyright © 2022 Cartes-Saavedra, Macuada, Lagos, Arancibia, Andrés, Yu-Wai-Man, Hajnóczky and Eisner. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Cartes-Saavedra, Benjamín
Macuada, Josefa
Lagos, Daniel
Arancibia, Duxan
Andrés, María E.
Yu-Wai-Man, Patrick
Hajnóczky, György
Eisner, Verónica
OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title_full OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title_fullStr OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title_full_unstemmed OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title_short OPA1 Modulates Mitochondrial Ca(2+) Uptake Through ER-Mitochondria Coupling
title_sort opa1 modulates mitochondrial ca(2+) uptake through er-mitochondria coupling
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762365/
https://www.ncbi.nlm.nih.gov/pubmed/35047497
http://dx.doi.org/10.3389/fcell.2021.774108
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