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Updated: Aug 11, 2026

Induction of Acute Skeletal Muscle Regeneration by Cardiotoxin Injection
Published on: January 1, 2017
The COX-2 pathway regulates growth of atrophied muscle via multiple mechanisms
Brenda A Bondesen1, Stephen T Mills, Grace K Pavlath
1Emory Univ. School of Medicine, Dept. of Pharmacology, O. W. Rollins Research Bldg., Atlanta, GA 30322, USA.
Abstract:
Loss of muscle mass occurs with disease, injury, aging, and inactivity. Restoration of normal muscle mass depends on myofiber growth, the regulation of which is incompletely understood. Cyclooxygenase (COX)-2 is one of two isoforms of COX that catalyzes the synthesis of prostaglandins, paracrine hormones that regulate diverse physiological and pathophysiological processes. Previously, we demonstrated that the COX-2 pathway regulates early stages of myofiber growth during muscle regeneration. However, whether the COX-2 pathway plays a common role in adult myofiber growth or functions specifically during muscle regeneration is unknown. Therefore, we examined the role of COX-2 during myofiber growth following atrophy in mice. Muscle atrophy was induced by hindlimb suspension (HS) for 2 wk, followed by a reloading period, during which mice were treated with either the COX-2-selective inhibitor SC-236 (6 mg x kg(-1) x day(-1)) or vehicle. COX-2 protein was expressed and SC-236 attenuated myofiber growth during reloading in both soleus and plantaris muscles. Attenuated myofiber growth in the soleus was associated with both decreased myonuclear addition and decreased inflammation, whereas neither of these processes mediated the effects of SC-236 on plantaris growth. In addition, COX-2(-/-) satellite cells exhibited impaired activation/proliferation in vitro, suggesting direct regulation of muscle cell activity by COX-2. Together, these data suggest that the COX-2 pathway plays a common regulatory role during various types of muscle growth via multiple mechanisms.
Insights
The cyclooxygenase (COX)-2 pathway is crucial for adult muscle growth after atrophy. Inhibiting COX-2 impairs myofiber growth, suggesting its broad role beyond regeneration.
Area of Science:
- Muscle physiology and regeneration
- Molecular mechanisms of muscle growth
- Inflammation and cellular signaling
Background:
- Muscle mass loss is common in aging, disease, and inactivity.
- Myofiber growth is key to restoring muscle mass but not fully understood.
- Cyclooxygenase (COX)-2 produces prostaglandins regulating physiological processes.
Purpose of the Study:
- To investigate the role of COX-2 in adult myofiber growth following muscle atrophy.
- To determine if COX-2's function extends beyond muscle regeneration.
Main Methods:
- Induced muscle atrophy in mice via hindlimb suspension for 2 weeks.
- Administered COX-2 inhibitor SC-236 or vehicle during reloading.
- Analyzed myofiber growth, myonuclear addition, and inflammation in soleus and plantaris muscles.
- Assessed COX-2(-/-) satellite cell activation and proliferation in vitro.
Main Results:
- SC-236 treatment attenuated myofiber growth in both soleus and plantaris muscles.
- In soleus muscle, growth inhibition was linked to reduced myonuclear addition and inflammation.
- In plantaris muscle, SC-236 effects were not mediated by these factors.
- COX-2 deficiency impaired satellite cell activation and proliferation in vitro.
Conclusions:
- The COX-2 pathway plays a common role in various types of adult muscle growth.
- COX-2 regulates muscle growth through multiple mechanisms, including direct effects on satellite cells.
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