Long-lasting muscle fatigue: partial disruption of excitation-contraction coupling by elevated cytosolic Ca2+ concentration during contractions
Open Access
- 1 April 2006
- journal article
- Published by American Physiological Society in American Journal of Physiology-Cell Physiology
- Vol. 290 (4), C1199-C1208
- https://doi.org/10.1152/ajpcell.00469.2005
Abstract
The repeated elevation of cytosolic Ca2+ concentration ([Ca2+]i) above resting levels during contractile activity has been associated with long-lasting muscle fatigue. The mechanism underlying this fatigue appears to involve elevated [Ca2+]i levels that induce disruption of the excitation-contraction (E-C) coupling process at the triad junction. Unclear, however, are which aspects of the activity-related [Ca2+]i changes are responsible for the deleterious effects, in particular whether they depend primarily on the peak [Ca2+]i reached locally at particular sites or on the temporal summation of the increased [Ca2+] in the cytoplasm as a whole. In this study, we used mechanically skinned fibers from rat extensor digitorum longus muscle, in which the normal E-C coupling process remains intact. The [Ca2+]i was raised either by applying a set elevated [Ca2+] throughout the fiber or by using action potential stimulation to induce the release of sarcoplasmic reticulum Ca2+ by the normal E-C coupling system with or without augmentation by caffeine or buffering with BAPTA. Herein we show that elevating [Ca2+]i in the physiological range of 2–20 μM irreversibly disrupts E-C coupling in a concentration-dependent manner but requires exposure for a relatively long time (1–3 min) to cause substantial uncoupling. The effectiveness of Ca2+ released via the endogenous system in disrupting E-C coupling indicates that the relatively high [Ca2+]i attained close to the release site at the triad junction is a more important factor than the increase in bulk [Ca2+]i. Our results suggest that during prolonged vigorous activity, the many repeated episodes of relatively high triadic [Ca2+] can disrupt E-C coupling and lead to long-lasting fatigue.Keywords
This publication has 27 references indexed in Scilit:
- μ-Calpain and calpain-3 are not autolyzed with exhaustive exercise in humansAmerican Journal of Physiology-Cell Physiology, 2006
- Calpain 1–titin interactions concentrate calpain 1 in the Z‐band edges and in the N2‐line region within the skeletal myofibrilThe FEBS Journal, 2005
- Sarcoplasmic reticulum calcium release compared in slow-twitch and fast-twitch fibres of mouse muscleThe Journal of Physiology, 2003
- Effect of sarcoplasmic reticulum Ca2+ content on action potential-induced Ca2+ release in rat skeletal muscle fibresThe Journal of Physiology, 2003
- Effects of oxidation and cytosolic redox conditions on excitation-contraction coupling in rat skeletal muscleThe Journal of Physiology, 2003
- Different Ca2+ releasing action of caffeine and depolarisation in skeletal muscle fibres of the ratThe Journal of Physiology, 2001
- Twitch and tetanic force responses and longitudinal propagation of action potentials in skinned skeletal muscle fibres of the ratThe Journal of Physiology, 2000
- High intracellular [Ca2+] alters sarcoplasmic reticulum function in skinned skeletal muscle fibres of the ratThe Journal of Physiology, 1999
- Events of the excitation–contraction–relaxation (E–C–R) cycle in fast‐ and slow‐twitch mammalian muscle fibres relevant to muscle fatigueActa Physiologica Scandinavica, 1998
- High‐ and low‐frequency fatigue revisitedActa Physiologica Scandinavica, 1996