Sodium channel distribution in normal and denervated rodent and snake skeletal muscle.
- 30 June 1988
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 401 (1) , 145-161
- https://doi.org/10.1113/jphysiol.1988.sp017155
Abstract
1. Sodium channel current density was measured using the loose-patch voltage clamp technique. Innervated rat, mouse and snake muscle had the highest density of Na+ channels in the end-plate region. These high Na+ channel densities were maintained in denervated muscle. 2. Perijunctional membrane had a Na+ current density 5- to 10-fold greater than the density several hundred micrometres from the end-plate. In all muscles this concentration of channels near the end-plate persisted following denervation. 3. At the tendon Na+ current density fell to low values (.apprx. 1 mA/cm2). The decrease in density began about 300-500 .mu.m from the tendon. This pattern was found in all snake twitch fibres and fast-twitch (EDL) rat and mouse muscle fibres. This reduction in channel density near the tendon was not affected by denervation. 4. Sodium channels in all regions of innervated rat and snake muscle fibres were highly sensitive to tetrodotoxin (TTX). Sodium channels in snake muscle remained sensitive to TTX after denervation. Sodium channels that are relatively resistant to TTX appeared in rat muscle after denervation. TTX-resistant channels were even more concentrated near the end-plate than were TTX-sensitive channels in innervated muscle. At the tendon TTX-resistant Na+ channel density decreased. 5. We concluded that although the nerve presumably directs the localization of Na+ channels during development, the ability to maintain this distribution and to control the distribution of newly appearing channels persists long after the nerve has been removed.This publication has 46 references indexed in Scilit:
- Sodium channels near end‐plates and nuclei of snake skeletal muscle.The Journal of Physiology, 1987
- Fluorescently labelled Na+ channels are localized and immobilized to synapses of innervated muscle fibresNature, 1986
- Concentration of acetylcholine receptor mRNA in synaptic regions of adult muscle fibresNature, 1985
- Ionic currents and charge movements in organ‐cultured rat skeletal muscle.The Journal of Physiology, 1984
- Increased sodium conductance in the synaptic region of rat skeletal muscle fibres.The Journal of Physiology, 1984
- Physiological basis of a steady endogenous current in rat lumbrical muscle.The Journal of general physiology, 1984
- Acetylcholine receptors in regenerating muscle accumulate at original synaptic sites in the absence of the nerve.The Journal of cell biology, 1979
- Control of acetylcholine receptors in skeletal musclePhysiological Reviews, 1979
- Potassium and chloride conductances in normal and denervated rat musclesAmerican Journal of Physiology-Cell Physiology, 1977
- Action Potential Generation in Denervated Rat Skeletal MuscleActa Physiologica Scandinavica, 1971