ArticleJournal of biomedical science2025
Mitophagy is required to protect against excessive skeletal muscle atrophy following hindlimb immobilization.
Article in Journal of biomedical science, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 19 papers.
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Who cites it
19 citing papers in PubMed.
- Review
- Exercise as a Programmable Regulator of Mitophagy Sensitivity in Aging Muscle and Age-Related Disease.IUBMB life · 2026Review
- Sustained loss ofbioRxiv : the preprint server for biology · 2026Article
- Heat treatment combined with hybrid exercises retraining mitigates cellular markers of protein turnover after hindlimb suspension in male mice: A pilot study.Experimental physiology · 2026Article
- Mitophagy in Botulinum Toxin Type A-Induced Muscle Atrophy.Oral diseases · 2026Article
- Mitochondrial Impairment in Unloaded Postural Muscle: Mechanisms Driving Loss of Muscle Function and Mass.Antioxidants (Basel, Switzerland) · 2026Review
- From homeostasis to pathology, organelle-specific autophagy in skeletal muscle: a PRISMA-ScR scoping review.Frontiers in physiology · 2026Review
- Physical exercise as a precision strategy for targeted PINK1 recruitment- a mechanistic review.Frontiers in physiology · 2026Review
- Mitochondrial capacities and quality control following short- and long-term weight restoration after simulated anorexia nervosa.Experimental physiology · 2025Article
- Mitophagy in skeletal muscle: Impact of ageing, exercise and disuse.Experimental physiology · 2025Review
- Cisplatin-Induced Skeletal Muscle Atrophy: Biomolecular Mechanisms and the Protective Role of Exercise-Induced Myokines.Biomolecules · 2025Review
- H-silicene nanosheets as a novel therapeutic approach for disuse muscle atrophy by modulating macrophage polarization.Materials today. Bio · 2025Article
- Activation of mitophagy and proteasomal degradation confers resistance to developmental defects in postnatal skeletal muscle.Journal of biomedical science · 2025Article
- The tumor suppressor pRb and its relative p130 are required to maintain murine adult skeletal muscle homeostasis.Oncogene · 2025Article
- Mitochondrial dysfunction in age-related sarcopenia: mechanistic insights, diagnostic advances, and therapeutic prospects.Frontiers in cell and developmental biology · 2025Review
- Altered senescence and mitochondrial transcriptome defines age-related changes in satellite cells.Frontiers in cell and developmental biology · 2025Article
- Gut-muscle axis crosstalk in age-related sarcopenia: mechanisms and therapeutic targets.Frontiers in microbiology · 2025Review
- Influence of skeletal muscle heterogeneity on autophagic signaling and response.Autophagy reports · 2025Review
- Article
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6 authors.
Funding
Abstract
backgroundSkeletal muscle atrophy involves significant remodeling of fibers and is characterized by deficits in mitochondrial content and function. These changes are intimately connected to shifts in mitochondrial turnover, encompassing processes such as mitophagy and mitochondrial biogenesis. However, the role of these mitochondrial turnover processes in muscle atrophy remains poorly understood.
methodsWe used a novel mitophagy reporter model, mt-Keima mice, to perform hindlimb immobilization and accurately measure mitophagy. A comprehensive set of analyses were conducted to investigate biochemical and molecular changes at the muscle and mitochondrial levels. We also performed image analyses to determine mitophagic flux. To further explore the role of mitophagy in immobilization-induced atrophy, we treated animals with N-acetylcysteine (NAC; 150 mg/kg/day) to modify reactive oxygen species (ROS) signaling and colchicine (0.4 mg/kg/day) to inhibit autophagy.
resultsOur study revealed that hindlimb immobilization leads to muscle weakness and atrophy of fast-twitch muscle fibers (types IIA, IIX, and IIB), with recovery observed in IIA fibers following remobilization. This atrophy was accompanied by a significant increase in mitophagic flux. Additionally, immobilization induced notable mitochondrial dysfunction, as shown by diminished respiration, increased mitochondrial ROS, and greater whole muscle lipid peroxidation. Treatment of immobilized mice with NAC enhanced mitochondrial respiration and reduced ROS generation but suppressed mitophagic flux and intensified atrophy of type IIX and IIB fibers. Additionally, administration of colchicine to immobilized mice suppressed mitophagic flux, which also exacerbated atrophy of IIX and IIB fibers. Colchicine treatment led to significant reductions in mitochondrial function, accompanied by CASP9 and CASP3 activation.
conclusionThese findings emphasize the role of mitophagy in limiting excessive muscle atrophy during immobilization. Targeting mitophagy may offer new strategies to preserve muscle function during prolonged periods of immobilization.
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