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Updated: Jun 4, 2025

Measurement of Insulin- and Contraction-Stimulated Glucose Uptake in Isolated and Incubated Mature Skeletal Muscle from Mice
Published on: May 16, 2021
Regulation of injury-induced skeletal myofiber regeneration by glucose transporter 4 (GLUT4)
Tyler J Sermersheim1,2, LeAnna J Phillips1,2, Parker L Evans1,2
1Department of Anatomy, Cell Biology & Physiology, Indiana University School of Medicine, Indianapolis, IN, USA.
Background:
Insulin resistance and type 2 diabetes impair cellular regeneration in multiple tissues including skeletal muscle. The molecular basis for this impairment is largely unknown. Glucose uptake via glucose transporter GLUT4 is impaired in insulin resistance. In healthy muscle, acute injury stimulates glucose uptake. Whether decreased glucose uptake via GLUT4 impairs muscle regeneration is presently unknown. The goal of this study was to determine whether GLUT4 regulates muscle glucose uptake and/or regeneration following acute injury.
Methods:
Tibialis anterior and extensor digitorum longus muscles from wild-type, control, or muscle-specific GLUT4 knockout (mG4KO) mice were injected with the myotoxin barium chloride to induce muscle injury. After 3, 5, 7, 10, 14, or 21 days (in wild-type mice), or after 7 or 14 days (in control & mG4KO) mice, muscles were isolated to examine [3H]-2-deoxyglucose uptake, GLUT4 levels, extracellular fluid space, fibrosis, myofiber cross-sectional area, and myofiber centralized nuclei.
Results:
In wild-type mice, muscle glucose uptake was increased 3, 5, 7, and 10 days post-injury. There was a rapid decrease in GLUT4 protein levels that were restored to baseline at 5-7 days post-injury, followed by a super-compensation at 10-21 days. In mG4KO mice, there were no differences in muscle glucose uptake, extracellular fluid space, muscle fibrosis, myofiber cross-sectional areas, or percentage of centrally nucleated myofibers at 7 days post-injury. In contrast, at 14 days injured muscles from mG4KO mice exhibited decreased glucose uptake, muscle weight, myofiber cross sectional areas, and centrally nucleated myofibers, with no change in extracellular fluid space or fibrosis.
Conclusions:
Collectively, these findings demonstrate that glucose uptake via GLUT4 regulates skeletal myofiber regeneration following acute injury.
Insights
Glucose transporter GLUT4 is crucial for skeletal muscle regeneration after injury. Impaired GLUT4 function in mice delayed muscle repair and glucose uptake, highlighting its role in recovery.
Area of Science:
- Muscle physiology and regeneration
- Cellular metabolism and glucose transport
Background:
- Insulin resistance and type 2 diabetes impair skeletal muscle regeneration.
- The precise molecular mechanisms behind this impairment are not fully understood.
- Glucose transporter type 4 (GLUT4) mediated glucose uptake is reduced in insulin resistance.
Purpose of the Study:
- To investigate the role of GLUT4 in regulating muscle glucose uptake following acute injury.
- To determine if impaired GLUT4 function affects skeletal muscle regeneration.
Main Methods:
- Muscle injury was induced in wild-type and muscle-specific GLUT4 knockout (mG4KO) mice using barium chloride injection.
- Evaluated glucose uptake, GLUT4 protein levels, and histological markers of regeneration (myofiber size, central nuclei, fibrosis) at various time points post-injury.
Main Results:
- Wild-type mice showed increased glucose uptake and dynamic changes in GLUT4 levels post-injury.
- mG4KO mice exhibited delayed muscle regeneration at 14 days post-injury, with reduced glucose uptake, muscle weight, and myofiber repair.
- No significant differences in fibrosis or extracellular fluid space were observed between groups.
Conclusions:
- Glucose uptake mediated by GLUT4 is essential for effective skeletal muscle regeneration after acute injury.
- Findings suggest GLUT4 plays a critical regulatory role in the repair process of skeletal muscle.
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