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Sodium withdrawal contractures in developing and regenerating rat extensor digitorum longus muscles
1Laboratory of Cellular and Molecular Physiopathology and Pharmacology, CJF Inserm 96-01, CHR G.R. Laennec, Nantes, France.
Muscle & Nerve
|October 15, 1998
Summary
Sodium withdrawal contractures in extensor digitorum longus (EDL) muscles occur in early development and in regenerating muscle. Denervation appears crucial for these contractures, possibly involving calcium-sodium exchange.
Area of Science:
- Muscle physiology
- Developmental biology
- Regenerative medicine
Background:
- Sodium withdrawal contractures are observed in developing extensor digitorum longus (EDL) muscles within the first 6 days post-birth.
- These contractures are absent in mature EDL muscles.
- Regenerating EDL muscles exhibit unique responses to sodium withdrawal.
Purpose of the Study:
- To investigate the occurrence and timing of zero-sodium (zero-Na) contractures in regenerating EDL muscles.
- To explore the role of denervation in the development of these contractures.
- To propose a mechanism for zero-Na contractures in regenerating muscle.
Main Methods:
- Induction of muscle regeneration using bupivacaine injection.
- Muscle autotransplantation procedures.
- Intervention on sliced muscles.
- Observation of zero-Na contractures at various time points post-intervention.
Main Results:
- Zero-Na contractures were observed 7 days after bupivacaine injection but not at later time points (14 or 90 days).
- Regenerating EDL muscles showed zero-Na contractures 7, 14, and 90 days after autotransplantation.
- Sliced muscles also exhibited zero-Na contractures at 7, 14, and 90 days post-intervention.
- These contractures were linked to denervation in regenerating muscles.
Conclusions:
- Denervation plays a significant role in the development of zero-Na contractures in regenerating muscles.
- A calcium-sodium exchange mechanism across the sarcolemma is suggested as a potential cause for these contractures in regenerating muscle.