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Updated: Jun 22, 2026

Isolation and Differentiation of Primary Myoblasts from Mouse Skeletal Muscle Explants
Published on: October 15, 2019
AMPK inhibits myoblast differentiation through a PGC-1alpha-dependent mechanism
David L Williamson1, David C Butler, Stephen E Alway
1Division of Exercise Physiology, West Virginia University School of Medicine, Morgantown, West Virginia 26506, USA. dwilliamson@hsc.wvu.edu
Abstract:
Elevated phosphorylation of AMP-activated protein kinase (AMPK) has been shown to inhibit skeletal muscle growth in both culture and animal models, but its role in differentiation of muscle cells is less clear. p21 is known to have an important role in differentiation, but AMPK's role regulating p21 in differentiation in muscle cultures is unknown. Therefore, the purpose of this study was to determine the role of p21 in differentiation of skeletal muscle cells under conditions of elevated AMPK phosphorylation. Treating C(2)C(12) myoblast cultures with 1 mM 5-aminoimidazole-4-carboxamide 1-beta-D-ribonucleoside (AICAR) for up to 24 h induced AMPK phosphorylation. Activation of AMPK reduced p21 protein and mRNA expression, which was associated with reduced G(1)/S cell cycle transition and p21 promoter activity. AICAR-treated myoblasts undergoing differentiation also had reduced p21 protein expression, reduced myotube formation, and myosin accumulation. When myotube cultures were treated with AICAR for 24 h, p21, myosin protein expression, and MyoD were significantly reduced. Myotube atrophy was also apparent compared with control conditions. Addition of compound C, an AMPK inhibitor, attenuated AICAR's negative effects on the myotube cultures. The nuclear expression of p21 protein appeared to be more affected by AICAR-treated myotubes than the cytosolic portion of p21 protein, which was attenuated with compound C treatment. Further analysis revealed that AICAR treatment increased PGC-1alpha and decreased FOXO3A protein expression, which was reversed with compound C cotreatment. Knockdown of PGC-1alpha with shRNA corroborated the compound C data, preserving nuclear FOXO3A and p21 protein expression. These data demonstrate that AICAR-induced AMPK phosphorylation inhibits cell cycle transition, reducing differentiation of myoblasts into myotubes, through PGC-1alpha-FOXO3A-p21.
Insights
Elevated AMP-activated protein kinase (AMPK) phosphorylation inhibits skeletal muscle cell differentiation by reducing p21 expression via the PGC-1alpha-FOXO3A pathway, impacting myotube formation and myosin accumulation.
Area of Science:
- Muscle cell biology
- Molecular signaling pathways
Background:
- AMP-activated protein kinase (AMPK) phosphorylation is known to inhibit skeletal muscle growth.
- The role of AMPK in muscle cell differentiation and its regulation of p21, a key differentiation factor, remains unclear.
Purpose of the Study:
- To investigate the role of p21 in skeletal muscle cell differentiation under conditions of elevated AMPK phosphorylation.
- To elucidate the molecular mechanisms by which AMPK affects p21 expression and myogenesis.
Main Methods:
- C2C12 myoblast and myotube cultures were treated with AICAR to induce AMPK phosphorylation.
- AMPK activation effects on p21 expression, cell cycle progression, myotube formation, and key protein levels (MyoD, PGC-1alpha, FOXO3A) were assessed.
- AMPK inhibition using compound C and PGC-1alpha knockdown using shRNA were employed to validate findings.
Main Results:
- AICAR-induced AMPK activation reduced p21 protein and mRNA expression, inhibiting G1/S cell cycle transition and p21 promoter activity.
- Differentiation was impaired, evidenced by reduced myotube formation, myosin accumulation, and MyoD expression.
- AICAR increased PGC-1alpha and decreased FOXO3A, which was reversed by compound C; PGC-1alpha knockdown preserved nuclear FOXO3A and p21.
Conclusions:
- AICAR-induced AMPK phosphorylation inhibits myoblast differentiation into myotubes by downregulating p21 through the PGC-1alpha-FOXO3A pathway.
- This process involves reduced cell cycle progression and impacts key myogenic regulatory factors, leading to impaired myogenesis and myotube atrophy.
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