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Updated: May 10, 2026

Isolation and Differentiation of Primary Myoblasts from Mouse Skeletal Muscle Explants
Published on: October 15, 2019
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.
Abstract:
Forkhead box O 1 (Foxo1) controls the expression of proteins that carry out processes leading to skeletal muscle atrophy, making Foxo1 of therapeutic interest in conditions of muscle wasting. The transcription of Foxo1-regulated proteins is dependent on the translocation of Foxo1 to the nucleus, which can be repressed by insulin-like growth factor-1 (IGF-1) treatment. The role of Foxo1 in muscle atrophy has been explored at length, but whether Foxo1 nuclear activity affects skeletal muscle excitation-contraction (EC) coupling has not yet been examined. Here, we use cultured adult mouse skeletal muscle fibers to investigate the effects of Foxo1 overexpression on EC coupling. Fibers expressing Foxo1-green fluorescent protein (GFP) exhibit an inability to contract, impaired propagation of action potentials, and ablation of calcium transients in response to electrical stimulation compared with fibers expressing GFP alone. Evaluation of the transverse (T)-tubule system morphology, the membranous system involved in the radial propagation of the action potential, revealed an intact T-tubule network in fibers overexpressing Foxo1-GFP. Interestingly, long-term IGF-1 treatment of Foxo1-GFP fibers, which maintains Foxo1-GFP outside the nucleus, prevented the loss of normal calcium transients, indicating that Foxo1 translocation and the atrogenes it regulates affect the expression of proteins involved in the generation and/or propagation of action potentials. A reduction in the sodium channel Nav1.4 expression in fibers overexpressing Foxo1-GFP was also observed in the absence of IGF-1. We conclude that increased nuclear activity of Foxo1 prevents the normal muscle responses to electrical stimulation and that this indicates a novel capability of Foxo1 to disable the functional activity of skeletal muscle.
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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