Elevated nuclear Foxo1 suppresses excitability of skeletal muscle fibers

Erick O Hernández-Ochoa1, Tova Neustadt Schachter, Martin F Schneider

  • 1Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, Baltimore, Maryland.

Insights

Increased nuclear activity of Forkhead box O 1 (Foxo1) impairs skeletal muscle function by disrupting excitation-contraction coupling and reducing sodium channel expression. This suggests Foxo1 can disable muscle activity.

Area of Science:

  • Skeletal muscle physiology
  • Molecular biology
  • Cellular signaling

Background:

  • Forkhead box O 1 (Foxo1) is implicated in skeletal muscle atrophy.
  • Foxo1 nuclear translocation, regulated by insulin-like growth factor-1 (IGF-1), controls gene expression.
  • The impact of Foxo1 nuclear activity on muscle excitation-contraction (EC) coupling is unknown.

Purpose of the Study:

  • To investigate the effects of Foxo1 overexpression on EC coupling in adult mouse skeletal muscle fibers.
  • To determine if Foxo1 nuclear activity influences action potential propagation and calcium transients.

Main Methods:

  • Cultured adult mouse skeletal muscle fibers were used.
  • Fibers were transfected to overexpress Foxo1-green fluorescent protein (GFP) or GFP alone.
  • Electrophysiological and calcium imaging techniques assessed EC coupling.
  • T-tubule system morphology was evaluated.
  • Long-term IGF-1 treatment was applied to some Foxo1-GFP fibers.

Main Results:

  • Foxo1-GFP overexpression led to impaired muscle contraction, action potential propagation, and calcium transients.
  • The T-tubule system remained intact in Foxo1-GFP fibers.
  • IGF-1 treatment prevented the loss of calcium transients, indicating Foxo1 nuclear translocation is key.
  • Sodium channel Nav1.4 expression was reduced in Foxo1-GFP fibers without IGF-1.

Conclusions:

  • Increased nuclear Foxo1 activity disrupts skeletal muscle EC coupling.
  • Foxo1 influences proteins involved in action potential generation and propagation.
  • Foxo1 has a novel role in disabling skeletal muscle functional activity.

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