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Updated: May 23, 2026

Ex Vivo Assessment of Contractility, Fatigability and Alternans in Isolated Skeletal Muscles
Published on: November 1, 2012
Pathways of Ca²⁺ entry and cytoskeletal damage following eccentric contractions in mouse skeletal muscle
Bao-Ting Zhang1, Nicholas P Whitehead, Othon L Gervasio
1Muscle Cell Function Laboratory, School of Medical Sciences and Bosch Institute, University of Sydney, Australia.
Abstract:
Muscles that are stretched during contraction (eccentric contractions) show deficits in force production and a variety of structural changes, including loss of antibody staining of cytoskeletal proteins. Extracellular Ca(2+) entry and activation of calpains have been proposed as mechanisms involved in these changes. The present study used isolated mouse extensor digitorum longus (EDL) muscles subjected to 10 eccentric contractions and monitored force production, immunostaining of cytoskeletal proteins, and resting stiffness. Possible pathways for Ca(2+) entry were tested with streptomycin (200 μM), a blocker of stretch-activated channels, and with muscles from mice deficient in the transient receptor potential canonical 1 gene (TRPC1 KO), a candidate gene for stretch-activated channels. At 30 min after the eccentric contractions, the isometric force was decreased to 75 ± 3% of initial control and this force loss was reduced by streptomycin but not in the TRPC1 KO. Desmin, titin, and dystrophin all showed patchy loss of immunostaining 30 min after the eccentric contractions, which was substantially reduced by streptomycin and in the TRPC1 KO muscles. Muscles showed a reduction of resting stiffness following eccentric contractions, and this reduction was eliminated by streptomycin and absent in the TRPC1 KO muscles. Calpain activation was determined by the appearance of a lower molecular weight autolysis product and μ-calpain was activated at 30 min, whereas the muscle-specific calpain-3 was not. To test whether the loss of stiffness was caused by titin cleavage, protein gels were used but no significant titin cleavage was detected. These results suggest that Ca(2+) entry following eccentric contractions is through a stretch-activated channel that is blocked by streptomycin and encoded or modulated by TRPC1.
Insights
Eccentric contractions cause muscle damage, but streptomycin and TRPC1 gene manipulation reduce force loss and structural changes by blocking calcium entry through stretch-activated channels.
Area of Science:
- Muscle Physiology
- Cellular Biology
- Biochemistry
Background:
- Eccentric contractions induce muscle damage, characterized by force deficits and cytoskeletal protein alterations.
- Extracellular calcium (Ca2+) influx and calpain activation are hypothesized mechanisms driving these changes.
Purpose of the Study:
- To investigate the role of stretch-activated channels in muscle damage following eccentric contractions.
- To determine the involvement of the transient receptor potential canonical 1 (TRPC1) gene in Ca2+ entry and subsequent muscle dysfunction.
Main Methods:
- Isolated mouse extensor digitorum longus (EDL) muscles underwent 10 eccentric contractions.
- Force production, cytoskeletal protein immunostaining, and resting stiffness were measured.
- Streptomycin (a stretch-activated channel blocker) and TRPC1 knockout (TRPC1 KO) mice were used to probe Ca2+ entry pathways.
Main Results:
- Eccentric contractions reduced isometric force to 75% of control; streptomycin partially restored force, while TRPC1 KO showed no improvement.
- Loss of desmin, titin, and dystrophin immunostaining was reduced by streptomycin and in TRPC1 KO muscles.
- Reduced resting stiffness post-contraction was prevented by streptomycin and absent in TRPC1 KO muscles, with μ-calpain activation observed.
Conclusions:
- Ca2+ entry following eccentric contractions occurs via streptomycin-sensitive, TRPC1-dependent stretch-activated channels.
- These channels contribute to force loss, cytoskeletal disruption, and reduced stiffness after eccentric exercise.
- TRPC1 plays a significant role in mediating muscle damage induced by eccentric contractions.
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