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Domain Reorientation and Rotation of an Intracellular Assembly Regulate Conduction in Kir Potassium Channels
Author(s) -
Oliver B. Clarke,
Alessandro T. Caputo,
Adam P. Hill,
Jamie I. Vandenberg,
Brian J. Smith,
Jacqueline M. Gulbis
Publication year - 2010
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2010.05.003
Subject(s) - biology , potassium channel , domain (mathematical analysis) , rotation (mathematics) , intracellular , potassium , microbiology and biotechnology , biophysics , materials science , geometry , mathematical analysis , mathematics , metallurgy
Potassium channels embedded in cell membranes employ gates to regulate K+ current. While a specific constriction in the permeation pathway has historically been implicated in gating, recent reports suggest that the signature ion selectivity filter located in the outer membrane leaflet may be equally important. Inwardly rectifying K+ channels also control the directionality of flow, using intracellular polyamines to stem ion efflux by a valve-like action. This study presents crystallographic evidence of interdependent gates in the conduction pathway and reveals the mechanism of polyamine block. Reorientation of the intracellular domains, concomitant with activation, instigates polyamine release from intracellular binding sites to block the permeation pathway. Conformational adjustments of the slide helices, achieved by rotation of the cytoplasmic assembly relative to the pore, are directly correlated to the ion configuration in the selectivity filter. Ion redistribution occurs irrespective of the constriction, suggesting a more expansive role of the selectivity filter in gating than previously appreciated.

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