Crucial Role of Sodium Channel Fast Inactivation in Muscle Fibre Inexcitability in a Rat Model of Critical Illness Myopathy
Open Access
- 1 March 2003
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 547 (2) , 555-566
- https://doi.org/10.1113/jphysiol.2002.035188
Abstract
Critical illness myopathy is an acquired disorder in which skeletal muscle becomes electrically inexcitable. We previously demonstrated that inactivation of Na+ channels contributes to inexcitability of affected fibres in an animal model of critical illness myopathy in which denervated rat skeletal muscle is treated with corticosteroids (steroid denervated; SD). Our previous work, however, did not address the relative importance of membrane depolarization versus a shift in the voltage dependence of fast inactivation in causing inexcitability. It also remained unknown whether changes in the voltage dependence of activation or slow inactivation play a role in inexcitability. In the current study we found that a hyperpolarizing shift in the voltage dependence of fast inactivation of Na+ channels is the principal factor underlying inexcitability in SD fibres. Although depolarization tends to decrease excitability, it is insufficient to account for inexcitability in SD fibres since many normal and denervated fibres retain normal excitability when depolarized to the same resting potentials as affected SD fibres. Changes in the voltage dependence of activation and slow inactivation of Na+ channels were also observed in SD fibres; however, the changes appear to increase rather than decrease excitability. These results highlight the importance of the change in fast inactivation in causing inexcitability of SD fibres.Keywords
This publication has 33 references indexed in Scilit:
- The Selectivity Filter of the Voltage-gated Sodium Channel Is Involved in Channel ActivationJournal of Biological Chemistry, 2001
- Altered Gene Expression in Steroid-Treated Denervated MuscleNeurobiology of Disease, 1999
- End‐plate voltage‐gated sodium channels are lost in clinical and experimental myasthenia gravisAnnals of Neurology, 1998
- Loss of electrical excitability in an animal model of acute quadriplegic myopathyAnnals of Neurology, 1998
- Contribution of Sialic Acid to the Voltage Dependence of Sodium Channel GatingThe Journal of general physiology, 1997
- Sodium channel slow inactivation and the distribution of sodium channels on skeletal muscle fibres enable the performance properties of different skeletal muscle fibre typesActa Physiologica Scandinavica, 1996
- TTX-sensitive and TTX-insensitive sodium channel mRNA transcripts are independently regulated in adult skeletal muscle after denervationNeuron, 1991
- Slow sodium channel inactivation in mammalian muscle: A possible role in regulating excitabilityMuscle & Nerve, 1988
- Molecular aspects of the trophic influence of nerve on muscleProgress in Neurobiology, 1983
- Effects of denervation and colchicine treatment on the chloride conductance of rat skeletal muscle fibersJournal of Neurobiology, 1976