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Updated: Aug 25, 2026

Measurement of Insulin- and Contraction-Stimulated Glucose Uptake in Isolated and Incubated Mature Skeletal Muscle from Mice
Published on: May 16, 2021
Calpain system regulates muscle mass and glucose transporter GLUT4 turnover
Kenichi Otani1, Dong-Ho Han, Eric L Ford
1Department of Medicine, Washington University School of Medicine, 660 S. Euclid Avenue, St. Louis, MO 63110, USA.
Abstract:
The experiments in this study were undertaken to determine whether inhibition of calpain activity in skeletal muscle is associated with alterations in muscle metabolism. Transgenic mice that overexpress human calpastatin, an endogenous calpain inhibitor, in skeletal muscle were produced. Compared with wild type controls, muscle calpastatin mice demonstrated normal glucose tolerance. Levels of the glucose transporter GLUT4 were increased more than 3-fold in the transgenic mice by Western blotting while mRNA levels for GLUT4 and myocyte enhancer factors, MEF 2A and MEF 2D, protein levels were decreased. We found that GLUT4 can be degraded by calpain-2, suggesting that diminished degradation is responsible for the increase in muscle GLUT4 in the calpastatin transgenic mice. Despite the increase in GLUT4, glucose transport into isolated muscles from transgenic mice was not increased in response to insulin. The expression of protein kinase B was decreased by approximately 60% in calpastatin transgenic muscle. This decrease could play a role in accounting for the insulin resistance relative to GLUT4 content of calpastatin transgenic muscle. The muscle weights of transgenic animals were substantially increased compared with controls. These results are consistent with the conclusion that calpain-mediated pathways play an important role in the regulation of GLUT4 degradation in muscle and in the regulation of muscle mass. Inhibition of calpain activity in muscle by overexpression of calpastatin is associated with an increase in GLUT4 protein without a proportional increase in insulin-stimulated glucose transport. These findings provide evidence for a physiological role for calpains in the regulation of muscle glucose metabolism and muscle mass.
Insights
Inhibition of calpain activity in skeletal muscle increases glucose transporter GLUT4 protein levels but does not improve insulin-stimulated glucose transport, impacting muscle metabolism and mass.
Area of Science:
- Biochemistry
- Molecular Biology
- Physiology
Background:
- Calpain activity is implicated in muscle protein turnover.
- Understanding calpain's role in skeletal muscle metabolism is crucial for metabolic disease research.
Purpose of the Study:
- To investigate the link between calpain inhibition and skeletal muscle metabolism.
- To determine the effect of calpastatin overexpression on glucose transport and muscle mass.
Main Methods:
- Generated transgenic mice overexpressing human calpastatin in skeletal muscle.
- Utilized Western blotting to quantify protein levels (GLUT4, MEF 2A, MEF 2D, protein kinase B).
- Assessed glucose tolerance and isolated muscle glucose transport.
Main Results:
- Calpastatin transgenic mice showed increased GLUT4 protein levels but decreased GLUT4 mRNA and MEF 2A/2D protein levels.
- Calpain-2 mediated GLUT4 degradation, explaining the increased GLUT4 protein.
- Despite elevated GLUT4, insulin-stimulated glucose transport remained unchanged, with decreased protein kinase B expression.
- Muscle weight was significantly increased in transgenic mice.
Conclusions:
- Calpain-mediated pathways are key regulators of GLUT4 degradation and muscle mass.
- Calpain inhibition increases muscle GLUT4 protein without enhancing insulin sensitivity.
- Calpains play a physiological role in regulating muscle glucose metabolism and muscle mass.
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