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PMID: 9154910 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Intrinsic voltage dependence and Ca2+ regulation of mslo large conductance Ca-activated K+ channels.

The Journal of general physiology ·Vol. 109 ·No. 5 ·1997-05-00 ·Pages 647-73

Cui J, Cox DH, Aldrich RW

Abstract

The kinetic and steady-state properties of macroscopic mslo Ca-activated K+ currents were studied in excised patches from Xenopus oocytes. In response to voltage steps, the timecourse of both activation and deactivation, but for a brief delay in activation, could be approximated by a single exponential function over a wide range of voltages and internal Ca2+ concentrations ([Ca]i). Activation rates increased with voltage and with [Ca]i, and approached saturation at high [Ca]i. Deactivation rates generally decreased with [Ca]i and voltage, and approached saturation at high [Ca]i. Plots of the macroscopic conductance as a function of voltage (G-V) and the time constant of activation and deactivation shifted leftward along the voltage axis with increasing [Ca]i. G-V relations could be approximated by a Boltzmann function with an equivalent gating charge which ranged between 1.1 and 1.8 e as [Ca]i varied between 0.84 and 1,000 microM. Hill analysis indicates that at least three Ca2+ binding sites can contribute to channel activation. Three lines of evidence indicate that there is at least one voltage-dependent unimolecular conformational change associated with mslo gating that is separate from Ca2+ binding. (a) The position of the mslo G-V relation does not vary logarithmically with [Ca]i. (b) The macroscopic rate constant of activation approaches saturation at high [Ca]i but remains voltage dependent. (c) With strong depolarizations mslo currents can be nearly maximally activated without binding Ca2+. These results can be understood in terms of a channel which must undergo a central voltage-dependent rate limiting conformational change in order to move from closed to open, with rapid Ca2+ binding to both open and closed states modulating this central step.

MeSH Terms
Animals Calcium/metabolism,pharmacology,physiology Electrophysiology Ion Channel Gating/drug effects,physiology Kinetics Membrane Potentials/drug effects,physiology Models, Biological Oocytes/metabolism Patch-Clamp Techniques Potassium Channels/drug effects,metabolism Xenopus laevis
Chemicals
Potassium Channels Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Cui J
Department of Molecular and Cellular Physiology and Howard Hughes Medical Institute, Stanford University, California 94305, USA.
Cox D H
Aldrich R W
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Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1997-05-00
Pages
647-73
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2217061
Subset
IM
Grants
NIMH NIH HHS · MH 48108 · United States
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