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Concatenated hERG1 tetramers reveal stoichiometry of altered channel gating by RPR-260243. | LitMetric

Concatenated hERG1 tetramers reveal stoichiometry of altered channel gating by RPR-260243.

Mol Pharmacol

Nora Eccles Harrison Cardiovascular Research and Training Institute (W.W., A.G., M.C.S.) and Department of Internal Medicine, Division of Cardiovascular Medicine (M.C.S.), University of Utah, Salt Lake City, Utah

Published: March 2015

AI Article Synopsis

  • The activation of hERG1 K(+) channels is crucial for heart cell repolarization during action potentials, and the compound RPR-260243 (RPR) influences this process by slowing down channel deactivation and reducing inactivation.
  • RPR binds to a specific pocket between hERG1 subunits, and investigating how many RPR molecules bind to the channel can help develop better anti-arrhythmia drugs for conditions with prolonged heart repolarization.
  • The study reveals that the extent to which RPR slows deactivation is linked to the number of functional (wild-type) subunits in the channel structure, indicating that drug binding and channel function are related through different mechanisms.

Article Abstract

Activation of human ether-a-go-go-related gene 1 (hERG1) K(+) channels mediates repolarization of action potentials in cardiomyocytes. RPR-260243 [(3R,4R)-4-[3-(6-methoxy-quinolin-4-yl)-3-oxo-propyl]-1-[3-(2,3,5-trifluorophenyl)-prop-2-ynyl]-piperidine-3-carboxylic acid] (RPR) slows deactivation and attenuates inactivation of hERG1 channels. A detailed understanding of the molecular mechanism of hERG1 agonists such as RPR may facilitate the design of more selective and potent compounds for prevention of arrhythmia associated with abnormally prolonged ventricular repolarization. RPR binds to a hydrophobic pocket located between two adjacent hERG1 subunits, and, hence, a homotetrameric channel has four identical RPR binding sites. To investigate the stoichiometry of altered channel gating induced by RPR, we constructed and characterized tetrameric hERG1 concatemers containing a variable number of wild-type subunits and subunits containing a point mutation (L553A) that rendered the channel insensitive to RPR, ostensibly by preventing ligand binding. The slowing of deactivation by RPR was proportional to the number of wild-type subunits incorporated into a concatenated tetrameric channel, and four wild-type subunits were required to achieve maximal slowing of deactivation. In contrast, a single wild-type subunit within a concatenated tetramer was sufficient to achieve half of the maximal RPR-induced shift in the voltage dependence of hERG1 inactivation, and maximal effect was achieved in channels containing three or four wild-type subunits. Together our findings suggest that the allosteric modulation of channel gating involves distinct mechanisms of coupling between drug binding and altered deactivation and inactivation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4352586PMC
http://dx.doi.org/10.1124/mol.114.096693DOI Listing

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