Voltage-dependent inactivation of T-tubular skeletal calcium channels in planar lipid bilayers.
Open Access
- 1 February 1991
- journal article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 97 (2) , 393-412
- https://doi.org/10.1085/jgp.97.2.393
Abstract
Single-channel properties of dihydropyridine (DHP)-sensitive calcium channels isolated from transverse tubular (T-tube) membrane of skeletal muscle were explored. Single-channel activity was recorded in planar lipid bilayers after fusion of highly purified rabbit T-tube microsomes. Two populations of DHP-sensitive calcium channels were identified. One type of channel (noninactivating) was active (2 microM +/- Bay K 8644) at steady-state membrane potentials and has been studied in other laboratories. The second type of channel (inactivating) was transiently activated during voltage pulses and had a very low open probability (Po) at steady-state membrane potentials. Inactivating channel activity was observed in 47.3% of the experiments (n = 84 bilayers). The nonstationary kinetics of this channel was determined using a standard voltage pulse (HP = -50 mV, pulse to 0 mV). The time constant (tau) of channel activation was 23 ms. During the mV). The time constant (tau) of channel activation was 23 ms. During the pulse, channel activity decayed (inactivated) with a tau of 3.7 s. Noninactivating single-channel activity was well described by a model with two open and two closed states. Inactivating channel activity was described by the same model with the addition of an inactivated state as proposed for cardiac muscle. The single-channel properties were compared with the kinetics of DHP-sensitive inward calcium currents (ICa) measured at the cellular level. Our results support the hypothesis that voltage-dependent inactivation of single DHP-sensitive channels contributes to the decay of ICa.Keywords
This publication has 28 references indexed in Scilit:
- Decay of the slow calcium current in twitch muscle fibers of the frog is influenced by intracellular EGTA.The Journal of general physiology, 1989
- Voltage-dependent inactivation of slow calcium channels in intact twitch muscle fibers of the frog.The Journal of general physiology, 1989
- Nonmodal gating of cardiac calcium channels as revealed by dihydropyridines.The Journal of general physiology, 1989
- Cardiac calcium channels in planar lipid bilayers. L-type channels and calcium-permeable channels open at negative membrane potentials.The Journal of general physiology, 1988
- Intrinsic optical and passive electrical properties of cut frog twitch fibers.The Journal of general physiology, 1987
- Voltage-dependent modulation of Ca channel current in heart cells by Bay K8644.The Journal of general physiology, 1986
- Calcium currents in a fast-twitch skeletal muscle of the rat.The Journal of general physiology, 1983
- On the stochastic properties of bursts of single ion channel openings and of clusters of burstsPhilosophical Transactions of the Royal Society of London. B, Biological Sciences, 1982
- Calcium Entry Leads to Inactivation of Calcium Channel in ParameciumScience, 1978
- Destruction of Sodium Conductance Inactivation in Squid Axons Perfused with PronaseThe Journal of general physiology, 1973