Cargando…

The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency

OPA1 (Optic Atrophy 1) is a multi-isoform dynamin GTPase involved in the regulation of mitochondrial fusion and organization of the cristae structure of the mitochondrial inner membrane. Pathogenic OPA1 variants lead to a large spectrum of disorders associated with visual impairment due to optic ner...

Descripción completa

Detalles Bibliográficos
Autores principales: Bocca, Cinzia, Kane, Mariame Selma, Veyrat-Durebex, Charlotte, Chupin, Stéphanie, Alban, Jennifer, Kouassi Nzoughet, Judith, Le Mao, Morgane, Chao de la Barca, Juan Manuel, Amati-Bonneau, Patrizia, Bonneau, Dominique, Procaccio, Vincent, Lenaers, Guy, Simard, Gilles, Chevrollier, Arnaud, Reynier, Pascal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6070520/
https://www.ncbi.nlm.nih.gov/pubmed/30068998
http://dx.doi.org/10.1038/s41598-018-29972-9
_version_ 1783343681542029312
author Bocca, Cinzia
Kane, Mariame Selma
Veyrat-Durebex, Charlotte
Chupin, Stéphanie
Alban, Jennifer
Kouassi Nzoughet, Judith
Le Mao, Morgane
Chao de la Barca, Juan Manuel
Amati-Bonneau, Patrizia
Bonneau, Dominique
Procaccio, Vincent
Lenaers, Guy
Simard, Gilles
Chevrollier, Arnaud
Reynier, Pascal
author_facet Bocca, Cinzia
Kane, Mariame Selma
Veyrat-Durebex, Charlotte
Chupin, Stéphanie
Alban, Jennifer
Kouassi Nzoughet, Judith
Le Mao, Morgane
Chao de la Barca, Juan Manuel
Amati-Bonneau, Patrizia
Bonneau, Dominique
Procaccio, Vincent
Lenaers, Guy
Simard, Gilles
Chevrollier, Arnaud
Reynier, Pascal
author_sort Bocca, Cinzia
collection PubMed
description OPA1 (Optic Atrophy 1) is a multi-isoform dynamin GTPase involved in the regulation of mitochondrial fusion and organization of the cristae structure of the mitochondrial inner membrane. Pathogenic OPA1 variants lead to a large spectrum of disorders associated with visual impairment due to optic nerve neuropathy. The aim of this study was to investigate the metabolomic consequences of complete OPA1 disruption in Opa1(−/−) mouse embryonic fibroblasts (MEFs) compared to their Opa1(+/+) counterparts. Our non-targeted metabolomics approach revealed significant modifications of the concentration of several mitochondrial substrates, i.e. a decrease of aspartate, glutamate and α-ketoglutaric acid, and an increase of asparagine, glutamine and adenosine-5′-monophosphate, all related to aspartate metabolism. The signature further highlighted the altered metabolism of nucleotides and NAD together with deficient mitochondrial bioenergetics, reflected by the decrease of creatine/creatine phosphate and pantothenic acid, and the increase in pyruvate and glutathione. Interestingly, we recently reported significant variations of five of these molecules, including aspartate and glutamate, in the plasma of individuals carrying pathogenic OPA1 variants. Our findings show that the disruption of OPA1 leads to a remodelling of bioenergetic pathways with the central role being played by aspartate and related metabolites.
format Online
Article
Text
id pubmed-6070520
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-60705202018-08-06 The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency Bocca, Cinzia Kane, Mariame Selma Veyrat-Durebex, Charlotte Chupin, Stéphanie Alban, Jennifer Kouassi Nzoughet, Judith Le Mao, Morgane Chao de la Barca, Juan Manuel Amati-Bonneau, Patrizia Bonneau, Dominique Procaccio, Vincent Lenaers, Guy Simard, Gilles Chevrollier, Arnaud Reynier, Pascal Sci Rep Article OPA1 (Optic Atrophy 1) is a multi-isoform dynamin GTPase involved in the regulation of mitochondrial fusion and organization of the cristae structure of the mitochondrial inner membrane. Pathogenic OPA1 variants lead to a large spectrum of disorders associated with visual impairment due to optic nerve neuropathy. The aim of this study was to investigate the metabolomic consequences of complete OPA1 disruption in Opa1(−/−) mouse embryonic fibroblasts (MEFs) compared to their Opa1(+/+) counterparts. Our non-targeted metabolomics approach revealed significant modifications of the concentration of several mitochondrial substrates, i.e. a decrease of aspartate, glutamate and α-ketoglutaric acid, and an increase of asparagine, glutamine and adenosine-5′-monophosphate, all related to aspartate metabolism. The signature further highlighted the altered metabolism of nucleotides and NAD together with deficient mitochondrial bioenergetics, reflected by the decrease of creatine/creatine phosphate and pantothenic acid, and the increase in pyruvate and glutathione. Interestingly, we recently reported significant variations of five of these molecules, including aspartate and glutamate, in the plasma of individuals carrying pathogenic OPA1 variants. Our findings show that the disruption of OPA1 leads to a remodelling of bioenergetic pathways with the central role being played by aspartate and related metabolites. Nature Publishing Group UK 2018-08-01 /pmc/articles/PMC6070520/ /pubmed/30068998 http://dx.doi.org/10.1038/s41598-018-29972-9 Text en © The Author(s) 2018 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Bocca, Cinzia
Kane, Mariame Selma
Veyrat-Durebex, Charlotte
Chupin, Stéphanie
Alban, Jennifer
Kouassi Nzoughet, Judith
Le Mao, Morgane
Chao de la Barca, Juan Manuel
Amati-Bonneau, Patrizia
Bonneau, Dominique
Procaccio, Vincent
Lenaers, Guy
Simard, Gilles
Chevrollier, Arnaud
Reynier, Pascal
The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title_full The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title_fullStr The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title_full_unstemmed The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title_short The Metabolomic Bioenergetic Signature of Opa1-Disrupted Mouse Embryonic Fibroblasts Highlights Aspartate Deficiency
title_sort metabolomic bioenergetic signature of opa1-disrupted mouse embryonic fibroblasts highlights aspartate deficiency
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6070520/
https://www.ncbi.nlm.nih.gov/pubmed/30068998
http://dx.doi.org/10.1038/s41598-018-29972-9
work_keys_str_mv AT boccacinzia themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT kanemariameselma themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT veyratdurebexcharlotte themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chupinstephanie themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT albanjennifer themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT kouassinzoughetjudith themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT lemaomorgane themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chaodelabarcajuanmanuel themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT amatibonneaupatrizia themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT bonneaudominique themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT procacciovincent themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT lenaersguy themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT simardgilles themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chevrollierarnaud themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT reynierpascal themetabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT boccacinzia metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT kanemariameselma metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT veyratdurebexcharlotte metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chupinstephanie metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT albanjennifer metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT kouassinzoughetjudith metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT lemaomorgane metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chaodelabarcajuanmanuel metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT amatibonneaupatrizia metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT bonneaudominique metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT procacciovincent metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT lenaersguy metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT simardgilles metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT chevrollierarnaud metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency
AT reynierpascal metabolomicbioenergeticsignatureofopa1disruptedmouseembryonicfibroblastshighlightsaspartatedeficiency