Voltage-gated cation conductance channel from fragmented sarcoplasmic reticulum: Steady-state electrical properties
- 1 March 1978
- journal article
- research article
- Published by Springer Nature in The Journal of Membrane Biology
- Vol. 40 (1) , 1-23
- https://doi.org/10.1007/bf01909736
Abstract
The interaction of fragmented sarcoplasmic reticulum (SR) with an artificial planar phospholipid membrane under conditions known to induce fusion of phospholipid vesicles raises the conductance of the planar bilayer by several orders of magnitude. Measurements of steady-state electrical properties of bilayers thus modified by SR show that two types of conductance pathways are present. One is a voltage-independent pathway which may be somewhat anion-selective. The other is a voltagegated ionophore showing selectivity to small monovalent cations. This latter ionophore is fully oriented within the artificial bilayer and is inhibited asymmetrically by divalent cations. It is also inhibited below pH 6. The ionophore displays single-channel conductance fluctuations between two states, “open” and “closed”, with an open-state conductance of 1.4×10−10 mho in 0.1m K+. The physiological function of this ionophore is unknown.This publication has 41 references indexed in Scilit:
- Permeability of sarcoplasmic reticulum membrane. The effect of changed ionic environments on Ca2+ releaseThe Journal of Membrane Biology, 1976
- Ca++-induced fusion of fragmented sarcoplasmic reticulum with artificial planar bilayersThe Journal of Membrane Biology, 1976
- Mechanisms of calcium release in sarcoplasmic reticulumLife Sciences, 1976
- Separate effects of mercurial compounds on the ionophoric and hydrolytic functions of the (Ca+++Mg++)-ATPase of sarcoplasmic reticulumThe Journal of Membrane Biology, 1975
- The nature of the voltage-dependent conductance of the hemocyanin channelThe Journal of Membrane Biology, 1975
- Statistical analysis of alamethicin channels in black lipid membranesThe Journal of Membrane Biology, 1974
- Kinetics of the Opening and Closing of Individual Excitability-Inducing Material Channels in a Lipid BilayerThe Journal of general physiology, 1974
- The nature of the voltage-dependent conductance induced by alamethicin in black lipid membranesThe Journal of Membrane Biology, 1973
- Depolarization induced calcium release from sarcoplasmic reticulum membrane fragments by changing ionic environmentFEBS Letters, 1973
- The Nature of the Negative Resistance in Bimolecular Lipid Membranes Containing Excitability-Inducing MaterialThe Journal of general physiology, 1970