ArticleMatrix biology : journal of the International Society for Matrix Biology2022
CCN2 participates in overload-induced skeletal muscle hypertrophy.
Article in Matrix biology : journal of the International Society for Matrix Biology, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed, 8 citations in OpenAlex.
- Treating age-related loss of muscle mass and function: Where should we be focusing?The Journal of physiology · 2026Review
- Vitamin K2 Alleviates Insulin Resistance Associated Skeletal Muscle Atrophy via the AKT/mTOR Signalling Pathway.Journal of cachexia, sarcopenia and muscle · 2025Article
- Transcriptional regulation of DLGAP5 by AR suppresses p53 signaling and inhibits CD8Translational oncology · 2024Article
- Mechanisms of mechanical overload-induced skeletal muscle hypertrophy: current understanding and future directions.Physiological reviews · 2023Review
- Engineering Cell-ECM-Material Interactions for Musculoskeletal Regeneration.Bioengineering (Basel, Switzerland) · 2023Review
- A glitch in the matrix: the pivotal role for extracellular matrix remodeling during muscle hypertrophy.American journal of physiology. Cell physiology · 2022Review
Corrections and comments
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Authors and funding
6 authors at 1 institution in 1 country.
Funding
Abstract
The regulation of skeletal muscle growth following pro-hypertrophic stimuli requires a coordinated response by different cell types that leads to extracellular matrix (ECM) remodeling and increases in muscle cross-sectional area. Indeed, matricellular proteins serve a key role as communication vehicles that facilitate the propagation of signaling stimuli required for muscle adaptation to environmental challenges. We found that the matricellular protein cellular communication network factor 2 (CCN2), also known as connective tissue growth factor (CTGF), is induced during a time course of overload-driven skeletal muscle hypertrophy in mice. To elucidate the role of CCN2 in mediating the hypertrophic response, we utilized genetically engineered mouse models for myofiber-specific CCN2 gain- and loss-of-function and then examined their response to mechanical stimuli through muscle overload. Interestingly, myofiber-specific deletion of CCN2 blunted muscle's hypertrophic response to overload without interfering with ECM deposition. On the other hand, when in excess through transgenic CCN2 overexpression, CCN2 was efficient in promoting overload-induced aberrant ECM accumulation without affecting myofiber growth. Altogether, our genetic approaches highlighted independent ECM and myofiber stress adaptation responses, and positioned CCN2 as a central mediator of both. Mechanistically, CCN2 acts by regulating focal adhesion kinase (FAK) mediated transduction of overload-induced extracellular signals, including interleukin 6 (IL6), and their regulatory impact on global protein synthesis in skeletal muscle. Overall, our study highlights the contribution of muscle-derived extracellular matrix factor CCN2 for proper hypertrophic muscle growth.
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Registered trials
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