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Updated: Jan 29, 2026

Tibial Nerve Transection - A Standardized Model for Denervation-induced Skeletal Muscle Atrophy in Mice
Published on: November 3, 2013
Inhibition of TRPC3-Nox2 Complex Formation Ameliorates Skeletal Muscle Atrophy
Yuri Kato1, Di Wu1, Tomoya Ito1
1Graduate School of Pharmaceutical Sciences, Kyushu University, Fukuoka 812-8582, Japan.
Abstract:
Skeletal muscle atrophy underlies sarcopenia, frailty, and muscular dystrophies, but the molecular mechanisms linking oxidative stress to muscle degeneration remain incompletely understood. We previously identified protein complex formation between transient receptor potential canonical 3 (TRPC3) and NADPH oxidase 2 (Nox2) as a key driver of anthracycline-induced myocardial atrophy. Here, we investigated whether this complex also contributes to skeletal muscle wasting. In skeletal muscle from sciatic nerve transection model mice and Duchenne muscular dystrophy (mdx) mice, TRPC3-Nox2 complex formation was enhanced. TRPC3 deletion significantly attenuated denervation-induced soleus atrophy and reduced reactive oxygen species (ROS) production. TRPC3-Nox2 complex formation was upregulated in the soleus muscle (SM) of mdx mice. Pharmacological disruption of the TRPC3-Nox2 interaction improved muscle size and strength and reduced plasma creatine kinase in mdx mice. A recombinant adeno-associated virus (AAV) encoding a TRPC3 C-terminal peptide was used to suppress TRPC3-Nox2 complex formation in vivo. AAV-mediated expression of TRPC3 C-terminal peptide mitigated muscle wasting (CSA) in mdx mice, while muscle strength and plasma CK were not significantly improved. Thus, TRPC3-Nox2 complex formation may be a pivotal driver of oxidative stress-mediated skeletal muscle atrophy. Targeting this protein-protein interaction represents a promising therapeutic strategy for Duchenne muscular dystrophy (DMD) and other intractable muscle-wasting disorders.
Insights
The protein complex between transient receptor potential canonical 3 (TRPC3) and NADPH oxidase 2 (Nox2) drives skeletal muscle atrophy. Disrupting this complex may offer a therapeutic strategy for Duchenne muscular dystrophy (DMD).
Area of Science:
- Molecular Biology
- Muscle Physiology
- Oxidative Stress Research
Background:
- Skeletal muscle atrophy is linked to sarcopenia, frailty, and muscular dystrophies.
- The molecular mechanisms connecting oxidative stress to muscle degeneration are not fully understood.
- Previous work identified a TRPC3-Nox2 complex driving heart muscle atrophy.
Purpose of the Study:
- To investigate the role of the TRPC3-Nox2 complex in skeletal muscle wasting.
- To determine if targeting this complex could be a therapeutic strategy for muscle atrophy.
Main Methods:
- Examined TRPC3-Nox2 complex formation in mouse models of denervation and Duchenne muscular dystrophy (mdx).
- Utilized TRPC3 deletion, pharmacological inhibitors, and AAV-mediated gene therapy.
- Assessed muscle atrophy (cross-sectional area), reactive oxygen species (ROS) production, muscle strength, and plasma creatine kinase levels.
Main Results:
- TRPC3-Nox2 complex formation was enhanced in skeletal muscle of denervated and mdx mice.
- TRPC3 deletion reduced denervation-induced atrophy and ROS production.
- Pharmacological and genetic disruption of the TRPC3-Nox2 complex showed potential in mitigating muscle wasting in mdx mice.
Conclusions:
- TRPC3-Nox2 complex formation is a key driver of oxidative stress-mediated skeletal muscle atrophy.
- Targeting the TRPC3-Nox2 interaction presents a potential therapeutic avenue for Duchenne muscular dystrophy and other muscle-wasting disorders.
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