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

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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