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Updated: Jun 21, 2025

Modeling Myotonic Dystrophy 1 in C2C12 Myoblast Cells
Published on: July 29, 2016
Extracellular C1qbp inhibits myogenesis by suppressing NFATc1
Jin-Man Kim1, Ho Kyoung Kim1, Han Jin Cho1
1Asan Institute for Life Sciences, Asan Medical Center, Seoul, 05505, Republic of Korea.
Abstract:
Aging and lack of exercise are the most important etiological factors for muscle loss. We hypothesized that new factors that contribute to muscle loss could be identified from ones commonly altered in expression in aged and exercise-limited skeletal muscles. Mouse gastrocnemius muscles were subjected to mass spectrometry-based proteomic analysis. The muscle proteomes of hindlimb-unloaded and aged mice were compared to those of exercised and young mice, respectively. C1qbp expression was significantly upregulated in the muscles of both hindlimb-unloaded and aged mice. In vitro myogenic differentiation was not affected by altering intracellular C1qbp expression but was significantly suppressed upon recombinant C1qbp treatment. Additionally, recombinant C1qbp repressed the protein level but not the mRNA level of NFATc1. NFATc1 recruited the transcriptional coactivator p300, leading to the upregulation of acetylated histone H3 levels. Furthermore, NFATc1 silencing inhibited p300 recruitment, downregulated acetylated histone H3 levels, and consequently suppressed myogenic differentiation. The expression of C1qbp was inversely correlated with that of NFATc1 in the gastrocnemius muscles of exercised or hindlimb-unloaded, and young or aged mice. These findings demonstrate a novel role of extracellular C1qbp in suppressing myogenesis by inhibiting the NFATc1/p300 complex. Thus, C1qbp can serve as a novel therapeutic target for muscle loss.
Insights
New research identifies C1qbp as a key factor in muscle loss associated with aging and inactivity. This protein suppresses muscle growth by interfering with the NFATc1/p300 complex, suggesting C1qbp as a potential therapeutic target for combating muscle wasting.
Area of Science:
- Muscle physiology
- Molecular biology
- Aging research
Background:
- Muscle loss (sarcopenia) is a significant health concern linked to aging and reduced physical activity.
- Identifying novel molecular mechanisms underlying muscle atrophy is crucial for developing effective interventions.
Purpose of the Study:
- To identify novel molecular factors contributing to muscle loss in aged and exercise-limited conditions.
- To investigate the role of C1qbp in regulating myogenesis and its potential as a therapeutic target for muscle wasting.
Main Methods:
- Proteomic analysis of mouse gastrocnemius muscles from young, aged, exercised, and hindlimb-unloaded models.
- In vitro studies assessing the effects of C1qbp on myogenic differentiation and NFATc1 expression.
- Analysis of the interaction between C1qbp, NFATc1, and the coactivator p300.
Main Results:
- C1qbp expression was significantly upregulated in aged and hindlimb-unloaded mouse muscles.
- Extracellular C1qbp suppressed myogenic differentiation by inhibiting the NFATc1/p300 complex, reducing acetylated histone H3 levels.
- C1qbp expression showed an inverse correlation with NFATc1 expression in skeletal muscles.
Conclusions:
- Extracellular C1qbp plays a novel role in suppressing myogenesis.
- C1qbp acts by inhibiting the NFATc1/p300 complex, a critical pathway for muscle differentiation.
- C1qbp represents a promising therapeutic target for mitigating age-related and inactivity-induced muscle loss.
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