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Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty

In most eukaryotic cells, the mitochondrial DNA (mtDNA) is transmitted uniparentally and present in multiple copies derived from the clonal expansion of maternally inherited mtDNA. All copies are therefore near-identical, or homoplasmic. The presence of >1 mtDNA variant in the same cytoplasm can...

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Autores principales: Lechuga-Vieco, Ana Victoria, Latorre-Pellicer, Ana, Calvo, Enrique, Torroja, Carlos, Pellico, Juan, Acín-Pérez, Rebeca, García-Gil, María Luisa, Santos, Arnoldo, Bagwan, Navratan, Bonzon-Kulichenko, Elena, Magni, Ricardo, Benito, Marina, Justo-Méndez, Raquel, Simon, Anna Katharina, Sánchez-Cabo, Fátima, Vázquez, Jesús, Ruíz-Cabello, Jesús, Enríquez, José Antonio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8969846/
https://www.ncbi.nlm.nih.gov/pubmed/35236094
http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056286
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author Lechuga-Vieco, Ana Victoria
Latorre-Pellicer, Ana
Calvo, Enrique
Torroja, Carlos
Pellico, Juan
Acín-Pérez, Rebeca
García-Gil, María Luisa
Santos, Arnoldo
Bagwan, Navratan
Bonzon-Kulichenko, Elena
Magni, Ricardo
Benito, Marina
Justo-Méndez, Raquel
Simon, Anna Katharina
Sánchez-Cabo, Fátima
Vázquez, Jesús
Ruíz-Cabello, Jesús
Enríquez, José Antonio
author_facet Lechuga-Vieco, Ana Victoria
Latorre-Pellicer, Ana
Calvo, Enrique
Torroja, Carlos
Pellico, Juan
Acín-Pérez, Rebeca
García-Gil, María Luisa
Santos, Arnoldo
Bagwan, Navratan
Bonzon-Kulichenko, Elena
Magni, Ricardo
Benito, Marina
Justo-Méndez, Raquel
Simon, Anna Katharina
Sánchez-Cabo, Fátima
Vázquez, Jesús
Ruíz-Cabello, Jesús
Enríquez, José Antonio
author_sort Lechuga-Vieco, Ana Victoria
collection PubMed
description In most eukaryotic cells, the mitochondrial DNA (mtDNA) is transmitted uniparentally and present in multiple copies derived from the clonal expansion of maternally inherited mtDNA. All copies are therefore near-identical, or homoplasmic. The presence of >1 mtDNA variant in the same cytoplasm can arise naturally or result from new medical technologies aimed at preventing mitochondrial genetic diseases and improving fertility. The latter is called divergent nonpathologic mtDNA heteroplasmy (DNPH). We hypothesized that DNPH is maladaptive and usually prevented by the cell. METHODS: We engineered and characterized DNPH mice throughout their lifespan using transcriptomic, metabolomic, biochemical, physiologic, and phenotyping techniques. We focused on in vivo imaging techniques for noninvasive assessment of cardiac and pulmonary energy metabolism. RESULTS: We show that DNPH impairs mitochondrial function, with profound consequences in critical tissues that cannot resolve heteroplasmy, particularly cardiac and skeletal muscle. Progressive metabolic stress in these tissues leads to severe pathology in adulthood, including pulmonary hypertension and heart failure, skeletal muscle wasting, frailty, and premature death. Symptom severity is strongly modulated by the nuclear context. CONCLUSIONS: Medical interventions that may generate DNPH should address potential incompatibilities between donor and recipient mtDNA.
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spelling pubmed-89698462022-04-01 Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty Lechuga-Vieco, Ana Victoria Latorre-Pellicer, Ana Calvo, Enrique Torroja, Carlos Pellico, Juan Acín-Pérez, Rebeca García-Gil, María Luisa Santos, Arnoldo Bagwan, Navratan Bonzon-Kulichenko, Elena Magni, Ricardo Benito, Marina Justo-Méndez, Raquel Simon, Anna Katharina Sánchez-Cabo, Fátima Vázquez, Jesús Ruíz-Cabello, Jesús Enríquez, José Antonio Circulation Original Research Articles In most eukaryotic cells, the mitochondrial DNA (mtDNA) is transmitted uniparentally and present in multiple copies derived from the clonal expansion of maternally inherited mtDNA. All copies are therefore near-identical, or homoplasmic. The presence of >1 mtDNA variant in the same cytoplasm can arise naturally or result from new medical technologies aimed at preventing mitochondrial genetic diseases and improving fertility. The latter is called divergent nonpathologic mtDNA heteroplasmy (DNPH). We hypothesized that DNPH is maladaptive and usually prevented by the cell. METHODS: We engineered and characterized DNPH mice throughout their lifespan using transcriptomic, metabolomic, biochemical, physiologic, and phenotyping techniques. We focused on in vivo imaging techniques for noninvasive assessment of cardiac and pulmonary energy metabolism. RESULTS: We show that DNPH impairs mitochondrial function, with profound consequences in critical tissues that cannot resolve heteroplasmy, particularly cardiac and skeletal muscle. Progressive metabolic stress in these tissues leads to severe pathology in adulthood, including pulmonary hypertension and heart failure, skeletal muscle wasting, frailty, and premature death. Symptom severity is strongly modulated by the nuclear context. CONCLUSIONS: Medical interventions that may generate DNPH should address potential incompatibilities between donor and recipient mtDNA. Lippincott Williams & Wilkins 2022-03-03 2022-04-05 /pmc/articles/PMC8969846/ /pubmed/35236094 http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056286 Text en © 2022 The Authors. https://creativecommons.org/licenses/by-nc-nd/4.0/Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution Non-Commercial-NoDerivs (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited, the use is noncommercial, and no modifications or adaptations are made.
spellingShingle Original Research Articles
Lechuga-Vieco, Ana Victoria
Latorre-Pellicer, Ana
Calvo, Enrique
Torroja, Carlos
Pellico, Juan
Acín-Pérez, Rebeca
García-Gil, María Luisa
Santos, Arnoldo
Bagwan, Navratan
Bonzon-Kulichenko, Elena
Magni, Ricardo
Benito, Marina
Justo-Méndez, Raquel
Simon, Anna Katharina
Sánchez-Cabo, Fátima
Vázquez, Jesús
Ruíz-Cabello, Jesús
Enríquez, José Antonio
Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title_full Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title_fullStr Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title_full_unstemmed Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title_short Heteroplasmy of Wild-Type Mitochondrial DNA Variants in Mice Causes Metabolic Heart Disease With Pulmonary Hypertension and Frailty
title_sort heteroplasmy of wild-type mitochondrial dna variants in mice causes metabolic heart disease with pulmonary hypertension and frailty
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8969846/
https://www.ncbi.nlm.nih.gov/pubmed/35236094
http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056286
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