Ultraslow contractile inactivation in frog skeletal muscle fibers.
Open Access
- 1 July 1990
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 96 (1) , 47-56
- https://doi.org/10.1085/jgp.96.1.47
Abstract
After a contracture response, skeletal muscle fibers enter into a state of contractile refractoriness or inactivation. Contractile inactivation starts soon after membrane depolarization, and causes spontaneous relaxation from the contracture response. Here we demonstrate that contractile inactivation continues to develop for tens of seconds if the membrane remains in a depolarized state. We have studied this phenomenon using short (1.5 mm) frog muscle fibers dissected from the Lumbricalis brevis muscles of the frog, with a two-microelectrode voltage-clamp technique. After a contracture caused by membrane depolarization to 0 mV, from a holding potential of -100 mV, a second contracture can be developed only if the membrane is repolarized beyond a determined potential value for a certain period of time. We have used a repriming protocol of 1 or 2 s at -100 mV. After this repriming period a fiber, if depolarized again to 0 mV, may develop a second contracture, whose magnitude and time course will depend on the duration of the period during which the fiber was maintained at 0 mV before the repriming process. With this procedure it is possible to demonstrate that the inactivation process builds up with a very slow time course, with a half time of approximately 35 s and completion in greater than 100 s. After prolonged depolarizations (greater than 100 s), the repriming time course is slower and the inactivation curve (obtained by plotting the extent of repriming against the repriming membrane potential) is shifted toward more negative potentials by greater than 30 mV when compared with similar curves obtained after shorter depolarizing periods (10-30 s). These results indicate that important changes occur in the physical state of the molecular moiety that is responsible for the inactivation phenomenon. The shift of the inactivation curve can be partially reversed by a low concentration (50 microM) of lanthanum ions. In the presence of 0.5 mM caffeine, larger responses can be obtained even after prolonged depolarization periods, indicating that the fibers maintain their capacity to liberate calcium.This publication has 20 references indexed in Scilit:
- Paralysis of frog skeletal muscle fibres by the calcium antagonist D‐600.The Journal of Physiology, 1983
- Arsenazo III and antipyrylazo III calcium transients in single skeletal muscle fibers.The Journal of general physiology, 1982
- The control of contraction activation by the membrane potentialCellular and Molecular Life Sciences, 1981
- Membrane potential, contractile activation and relaxation rates in voltage clamped short muscle fibres of the frog.The Journal of Physiology, 1979
- Biphasic Time Course of Inactivation of Potassium Contractures in Single Twitch Muscle Fibers of the FrogThe Japanese Journal of Physiology, 1979
- Effects of glycerol treatment and maintained depolarization on charge movement in skeletal muscle.The Journal of Physiology, 1976
- The action of caffeine on the activation of the contractile mechanism in striated muscle fibresThe Journal of Physiology, 1968
- Effects of External Calcium Deprivation on Single Muscle FibersThe Journal of general physiology, 1967
- The Effect of Calcium on the Mechanical Response of Single Twitch Muscle Fibres of Xenopus LaevisActa Physiologica Scandinavica, 1967
- The action of calcium ions on potassium contractures of single muscle fibresThe Journal of Physiology, 1963