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Published on: November 30, 2018
Dihydropyridine and ryanodine receptor binding after eccentric contractions in mouse skeletal muscle
Christopher P Ingalls1, Gordon L Warren, Jia-Zheng Zhang
1Muscle Biology Laboratory, Department of Kinesiology and Health, Georgia State University, Atlanta, GA 30303, USA. cingalls@gsu.edu
Abstract:
The purpose of this study was to determine whether there are alterations in the dihydropyridine and/or ryanodine receptors that might explain the excitation-contraction uncoupling associated with eccentric contraction-induced skeletal muscle injury. The left anterior crural muscles (i.e., tibialis anterior, extensor digitorum longus, and extensor hallucis longus) of mice were injured in vivo by 150 eccentric contractions. Peak isometric tetanic torque of the anterior crural muscles was reduced approximately 45% immediately and 3 days after the eccentric contractions. Partial restoration of peak isometric tetanic and subtetanic forces of injured extensor digitorum longus muscles by 10 mM caffeine indicated the presence of excitation-contraction uncoupling. Scatchard analysis of [3H]ryanodine binding indicated that the number of ryanodine receptor binding sites was not altered immediately postinjury but decreased 16% 3 days later. Dihydropyridine receptor binding sites increased approximately 20% immediately after and were elevated to the same extent 3 days after the injury protocol. Muscle injury did not alter the sensitivity of either receptor. These data suggest that a loss or altered sensitivity of the dihydropyridine and ryanodine receptors does not contribute to the excitation-contraction uncoupling immediately after contraction-induced muscle injury. We also concluded that the loss in ryanodine receptors 3 days after injury is not the primary cause of excitation-contraction uncoupling at that time.
Insights
Eccentric contraction-induced skeletal muscle injury causes excitation-contraction uncoupling. Alterations in dihydropyridine and ryanodine receptors do not immediately explain this uncoupling, nor does a later loss of ryanodine receptors.
Area of Science:
- Muscle Physiology
- Skeletal Muscle Injury
- Excitation-Contraction Coupling
Background:
- Eccentric contractions can induce skeletal muscle injury.
- Excitation-contraction (EC) uncoupling is a consequence of this injury.
- The specific molecular mechanisms underlying EC uncoupling remain unclear.
Purpose of the Study:
- To investigate alterations in dihydropyridine (DHP) and ryanodine receptors (RyRs) following eccentric contraction-induced skeletal muscle injury.
- To determine if these receptor alterations contribute to EC uncoupling.
Main Methods:
- In vivo skeletal muscle injury induced by 150 eccentric contractions in mice.
- Measurement of peak isometric tetanic torque to assess muscle function.
- Caffeine administration to evaluate EC coupling.
- Scatchard analysis of [3H]ryanodine binding to quantify RyR and DHP receptor sites.
Main Results:
- Muscle injury reduced peak isometric tetanic torque by ~45% immediately and 3 days post-injury.
- Caffeine partially restored force in injured muscles, confirming EC uncoupling.
- RyR binding sites were unchanged immediately post-injury but decreased 16% by 3 days.
- DHP receptor binding sites increased ~20% immediately and remained elevated at 3 days.
- Neither receptor's sensitivity was altered by the injury.
Conclusions:
- DHP and RyR receptor alterations do not explain immediate EC uncoupling after contraction-induced muscle injury.
- The observed loss of RyRs 3 days post-injury is not the primary cause of EC uncoupling at that time.
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