Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/27563
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Type: Journal article
Title: Zinc inhibits human CIC-1 muscle chloride channel by interacting with its common gating mechanism
Author: Duffield, M.
Rychkov, G.
Bretag, A.
Roberts, M.
Citation: The Journal of Physiology, 2005; 568(1):5-12
Publisher: Blackwell Publishing Ltd
Issue Date: 2005
ISSN: 0022-3751
1469-7793
Statement of
Responsibility: 
Michael D. Duffield, Grigori Y. Rychkov, Allan H. Bretag and Michael L. Roberts
Abstract: Transition metals block the muscle Cl channel ClC-1, which belongs to a large family of double-barreled Cl channels and transporters. In the Torpedo Cl channel ClC-0, Zn2+ block is closely related to the common gating mechanism that opens and closes both pores of the channel simultaneously, and the mutation C212S, which locks the common gate open, also eliminates the block. In ClC-1, however, previous results suggested that Zn2+ block is independent of gating, and that the cysteine residues involved in Zn2+ binding are in different positions to those that confer Zn2+ sensitivity on ClC-0. In this work, we show that Zn2+ block of ClC-1 is faster at hyperpolarized potentials where the channel is more likely to be in the closed state. Mutation C277S, equivalent to C212S in ClC-0, which locks the common gate in ClC-1 open, virtually eliminates Zn2+ block. A mutation, V321A, which reduces open probability of the common gate, facilitated Zn2+ block. These results demonstrate that Zn2+ block is state dependent, acting on the common gate. The extent of the block, however, is not a simple function of the open probability of the common gate. The Q10 of 13 of the time course of Zn2+ block, which is significantly higher than the Q10 of common gating transitions in WT ClC-1, suggests that Zn2+ binds to a very high temperature-dependent low-probability closed substate of the common gate, which has not yet been characterized in this channel.
Keywords: Kidney
Cell Line
Humans
Zinc
Chloride Channels
Transfection
Ion Channel Gating
Membrane Potentials
Point Mutation
Description: The definitive version is available at www.blackwell-synergy.com
DOI: 10.1113/jphysiol.2005.091777
Published version: http://jp.physoc.org/cgi/content/abstract/568/1/5
Appears in Collections:Aurora harvest 2
Molecular and Biomedical Science publications

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