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Updated: Jul 9, 2025

Immunolabelling Myofiber Degeneration in Muscle Biopsies
Published on: December 5, 2019
DBC1 maintains skeletal muscle integrity by enhancing myogenesis and preventing myofibre wasting
Na Liang1, Jia He1, Jiaqi Yan1
1State Key Laboratory of Common Mechanism Research for Major Diseases, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, China.
Background:
Skeletal muscle atrophy, particularly ageing-related muscular atrophy such as sarcopenia, is a significant health concern. Despite its prevalence, the underlying mechanisms remain poorly understood, and specific approved medications are currently unavailable. Deleted in breast cancer 1 (DBC1) is a well-known regulator of senescence, metabolism or apoptosis. Recent reports suggest that DBC1 may also potentially regulate muscle function, as mice lacking DBC1 exhibit weakness and limpness. However, the function of DBC1 in skeletal muscle and its associated molecular mechanisms remain unknown, thus prompting the focus of this study.
Methods:
Tibialis anterior (TA) muscle-specific DBC1 knockdown C57BL/6J male mice were generated through a single injection of 2.00 E + 11 vg of adeno-associated virus 9 delivering single-guide RNA for DBC1. Grip strength and endurance were assessed 2 months later, followed by skeletal muscle harvest. Muscle atrophy model was generated by cast immobilization of the mouse hindlimb for 2 weeks. Molecular markers of atrophy were probed in muscles upon termination. Cardiotoxin (CTX) was injected in TA muscles of DBC1 knockdown mice, and muscle regeneration was assessed by immunohistochemistry, quantitative PCR and western blotting. DBC1 knockdown C2C12 cells and myotubes were investigated using immunofluorescence staining, Seahorse, immunohistology, fluorescence-activated cell sorting and RNA-sequencing analyses.
Results:
DBC1 knockdown in skeletal muscle of young mice led to signatures of muscle atrophy, including a 28% reduction in muscle grip force (P = 0.023), a 54.4% reduction in running distance (P = 0.002), a 14.3% reduction in muscle mass (P = 0.007) and significantly smaller myofibre cross-sectional areas (P < 0.0001). DBC1 levels decrease in age-related or limb immobilization-induced atrophic mouse muscles and overexpress DBC1-attenuated atrophic phenotypes in these mice. Muscle regeneration was hampered in mice with CTX-induced muscle injury by DBC1 knockdown, as evidenced by reductions in myofibre cross-sectional areas of regenerating myofibres with centralized nuclei (P < 0.0001), percentages of MyoG+ nuclei (P < 0.0001) and fusion index (P < 0.0001). DBC1 transcriptionally regulated mouse double minute 2 (MDM2), which mediated ubiquitination and degradation of forkhead box O3 (FOXO3). Increased FOXO3 proteins hampered myogenesis in DBC1 knockdown satellite cells by compromising around 50% of mitochondrial functions (P < 0.001) and exacerbated atrophy in DBC1 knockdown myofibres by activating the ubiquitin-proteasome and autophagy-lysosome pathways.
Conclusions:
DBC1 is essential in maintaining skeletal muscle integrity by protecting against myofibres wasting and enhancing muscle regeneration via FOXO3. This research highlights the significance of DBC1 for healthy skeletal muscle function and its connection to muscular atrophy.
Insights
Deleted in breast cancer 1 (DBC1) is crucial for maintaining skeletal muscle health. Its deficiency leads to muscle atrophy and impaired regeneration, highlighting its role in preventing muscle wasting.
Area of Science:
- Molecular Biology
- Skeletal Muscle Physiology
- Aging Research
Background:
- Skeletal muscle atrophy, including sarcopenia, is a major health concern with poorly understood mechanisms and no approved treatments.
- Deleted in breast cancer 1 (DBC1) is known to regulate senescence, metabolism, and apoptosis, with recent findings suggesting a role in muscle function.
Purpose of the Study:
- To investigate the function of Deleted in breast cancer 1 (DBC1) in skeletal muscle.
- To elucidate the molecular mechanisms by which DBC1 influences muscle integrity and atrophy.
Main Methods:
- Generated tibialis anterior muscle-specific DBC1 knockdown mice using adeno-associated virus 9.
- Assessed muscle function (grip strength, endurance) and induced atrophy via immobilization and cardiotoxin injury.
- Utilized molecular analyses including qPCR, western blotting, immunofluorescence, and RNA-sequencing in both mouse models and C2C12 cells.
Main Results:
- DBC1 knockdown in young mice induced muscle atrophy, significantly reducing grip force, running distance, muscle mass, and myofiber size.
- DBC1 levels were decreased in age-related and immobilization-induced atrophic muscles; DBC1 overexpression attenuated these atrophic phenotypes.
- DBC1 knockdown impaired muscle regeneration after cardiotoxin injury and exacerbated atrophy by regulating MDM2, FOXO3 ubiquitination, mitochondrial function, and protein degradation pathways.
Conclusions:
- DBC1 is essential for maintaining skeletal muscle integrity, protecting against myofiber wasting, and promoting muscle regeneration.
- The study highlights DBC1's critical role in healthy muscle function and its implications in the context of muscular atrophy.
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