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Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers

Mitochondrial DNA deletions affect energy metabolism at tissue-specific and cell-specific threshold levels, but the pathophysiological mechanisms determining cell fate remain poorly understood. Chronic progressive external ophthalmoplegia (CPEO) is caused by mtDNA deletions and characterized by a mo...

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Autores principales: Elstner, Matthias, Olszewski, Konrad, Prokisch, Holger, Klopstock, Thomas, Murgia, Marta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537949/
https://www.ncbi.nlm.nih.gov/pubmed/34681740
http://dx.doi.org/10.3390/ijms222011080
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author Elstner, Matthias
Olszewski, Konrad
Prokisch, Holger
Klopstock, Thomas
Murgia, Marta
author_facet Elstner, Matthias
Olszewski, Konrad
Prokisch, Holger
Klopstock, Thomas
Murgia, Marta
author_sort Elstner, Matthias
collection PubMed
description Mitochondrial DNA deletions affect energy metabolism at tissue-specific and cell-specific threshold levels, but the pathophysiological mechanisms determining cell fate remain poorly understood. Chronic progressive external ophthalmoplegia (CPEO) is caused by mtDNA deletions and characterized by a mosaic distribution of muscle fibers with defective cytochrome oxidase (COX) activity, interspersed among fibers with retained functional respiratory chain. We used diagnostic histochemistry to distinguish COX-negative from COX-positive fibers in nine muscle biopsies from CPEO patients and performed laser capture microdissection (LCM) coupled to genome-wide gene expression analysis. To gain molecular insight into the pathogenesis, we applied network and pathway analysis to highlight molecular differences of the COX-positive and COX-negative fiber transcriptome. We then integrated our results with proteomics data that we previously obtained comparing COX-positive and COX-negative fiber sections from three other patients. By virtue of the combination of LCM and a multi-omics approach, we here provide a comprehensive resource to tackle the pathogenic changes leading to progressive respiratory chain deficiency and disease in mitochondrial deletion syndromes. Our data show that COX-negative fibers upregulate transcripts involved in translational elongation and protein synthesis. Furthermore, based on functional annotation analysis, we find that mitochondrial transcripts are the most enriched among those with significantly different expression between COX-positive and COX-negative fibers, indicating that our unbiased large-scale approach resolves the core of the pathogenic changes. Further enrichments include transcripts encoding LIM domain proteins, ubiquitin ligases, proteins involved in RNA turnover, and, interestingly, cell cycle arrest and cell death. These pathways may thus have a functional association to the molecular pathogenesis of the disease. Overall, the transcriptome and proteome show a low degree of correlation in CPEO patients, suggesting a relevant contribution of post-transcriptional mechanisms in shaping this disease phenotype.
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spelling pubmed-85379492021-10-24 Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers Elstner, Matthias Olszewski, Konrad Prokisch, Holger Klopstock, Thomas Murgia, Marta Int J Mol Sci Article Mitochondrial DNA deletions affect energy metabolism at tissue-specific and cell-specific threshold levels, but the pathophysiological mechanisms determining cell fate remain poorly understood. Chronic progressive external ophthalmoplegia (CPEO) is caused by mtDNA deletions and characterized by a mosaic distribution of muscle fibers with defective cytochrome oxidase (COX) activity, interspersed among fibers with retained functional respiratory chain. We used diagnostic histochemistry to distinguish COX-negative from COX-positive fibers in nine muscle biopsies from CPEO patients and performed laser capture microdissection (LCM) coupled to genome-wide gene expression analysis. To gain molecular insight into the pathogenesis, we applied network and pathway analysis to highlight molecular differences of the COX-positive and COX-negative fiber transcriptome. We then integrated our results with proteomics data that we previously obtained comparing COX-positive and COX-negative fiber sections from three other patients. By virtue of the combination of LCM and a multi-omics approach, we here provide a comprehensive resource to tackle the pathogenic changes leading to progressive respiratory chain deficiency and disease in mitochondrial deletion syndromes. Our data show that COX-negative fibers upregulate transcripts involved in translational elongation and protein synthesis. Furthermore, based on functional annotation analysis, we find that mitochondrial transcripts are the most enriched among those with significantly different expression between COX-positive and COX-negative fibers, indicating that our unbiased large-scale approach resolves the core of the pathogenic changes. Further enrichments include transcripts encoding LIM domain proteins, ubiquitin ligases, proteins involved in RNA turnover, and, interestingly, cell cycle arrest and cell death. These pathways may thus have a functional association to the molecular pathogenesis of the disease. Overall, the transcriptome and proteome show a low degree of correlation in CPEO patients, suggesting a relevant contribution of post-transcriptional mechanisms in shaping this disease phenotype. MDPI 2021-10-14 /pmc/articles/PMC8537949/ /pubmed/34681740 http://dx.doi.org/10.3390/ijms222011080 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Elstner, Matthias
Olszewski, Konrad
Prokisch, Holger
Klopstock, Thomas
Murgia, Marta
Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title_full Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title_fullStr Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title_full_unstemmed Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title_short Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers
title_sort multi-omics approach to mitochondrial dna damage in human muscle fibers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537949/
https://www.ncbi.nlm.nih.gov/pubmed/34681740
http://dx.doi.org/10.3390/ijms222011080
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