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Updated: May 27, 2026

Measurement of Mitochondrial Respiration in Human and Mouse Skeletal Muscle Fibers by High-Resolution Respirometry
Published on: October 4, 2024
Immune response and mitochondrial metabolism are commonly deregulated in DMD and aging skeletal muscle
Daniel Baron1, Armelle Magot, Gérard Ramstein
1INSERM, UMR915, Nantes, France. daniel.baron@inserm.fr
Abstract:
Duchenne Muscular Dystrophy (DMD) is a complex process involving multiple pathways downstream of the primary genetic insult leading to fatal muscle degeneration. Aging muscle is a multifactorial neuromuscular process characterized by impaired muscle regeneration leading to progressive atrophy. We hypothesized that these chronic atrophying situations may share specific myogenic adaptative responses at transcriptional level according to tissue remodeling. Muscle biopsies from four young DMD and four AGED subjects were referred to a group of seven muscle biopsies from young subjects without any neuromuscular disorder and explored through a dedicated expression microarray. We identified 528 differentially expressed genes (out of 2,745 analyzed), of which 328 could be validated by an exhaustive meta-analysis of public microarray datasets referring to DMD and Aging in skeletal muscle. Among the 328 validated co-expressed genes, 50% had the same expression profile in both groups and corresponded to immune/fibrosis responses and mitochondrial metabolism. Generalizing these observed meta-signatures with large compendia of public datasets reinforced our results as they could be also identified in other pathological processes and in diverse physiological conditions. Focusing on the common gene signatures in these two atrophying conditions, we observed enrichment in motifs for candidate transcription factors that may coordinate either the immune/fibrosis responses (ETS1, IRF1, NF1) or the mitochondrial metabolism (ESRRA). Deregulation in their expression could be responsible, at least in part, for the same transcriptome changes initiating the chronic muscle atrophy. This study suggests that distinct pathophysiological processes may share common gene responses and pathways related to specific transcription factors.
Insights
Duchenne Muscular Dystrophy (DMD) and muscle aging share common gene expression patterns, particularly in immune responses and mitochondrial function. These shared pathways, regulated by specific transcription factors, offer new insights into muscle atrophy.
Area of Science:
- Muscle biology
- Genomics
- Molecular pathology
Background:
- Duchenne Muscular Dystrophy (DMD) and aging muscle exhibit progressive atrophy.
- Both conditions involve complex molecular pathways leading to muscle degeneration.
- Shared transcriptional responses in these atrophying states are hypothesized.
Purpose of the Study:
- To identify common myogenic adaptive responses at the transcriptional level in DMD and aging muscle.
- To explore shared gene expression signatures between these two chronic atrophying conditions.
- To identify key transcription factors coordinating these shared responses.
Main Methods:
- Analysis of muscle biopsies from young DMD patients and aged subjects using expression microarrays.
- Validation of differentially expressed genes through meta-analysis of public microarray datasets.
- Bioinformatic analysis to identify enriched transcription factor binding motifs in common gene signatures.
Main Results:
- Identified 528 differentially expressed genes, with 328 validated across DMD and aging skeletal muscle datasets.
- Approximately 50% of validated genes showed similar expression profiles, linked to immune/fibrosis responses and mitochondrial metabolism.
- Common gene signatures revealed enrichment for transcription factors like ETS1, IRF1, NF1, and ESRRA.
Conclusions:
- Distinct pathophysiological processes like DMD and aging muscle atrophy share common transcriptional responses.
- Immune/fibrosis pathways and mitochondrial metabolism are key shared molecular mechanisms.
- Specific transcription factors may play a crucial role in coordinating these conserved responses in muscle degeneration.
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