Literature DB >> 26743208

Conformational changes of an ion-channel during gating and emerging electrophysiologic properties: Application of a computational approach to cardiac Kv7.1.

Ali Nekouzadeh1, Yoram Rudy2.   

Abstract

Ion channels are the "building blocks" of the excitation process in excitable tissues. Despite advances in determining their molecular structure, understanding the relationship between channel protein structure and electrical excitation remains a challenge. The Kv7.1 potassium channel is an important determinant of the cardiac action potential and its adaptation to rate changes. It is subject to beta adrenergic regulation, and many mutations in the channel protein are associated with the arrhythmic long QT syndrome. In this theoretical study, we use a novel computational approach to simulate the conformational changes that Kv7.1 undergoes during activation gating and compute the resulting electrophysiologic function in terms of single-channel and macroscopic currents. We generated all possible conformations of the S4-S5 linker that couples the S3-S4 complex (voltage sensor domain, VSD) to the pore, and all associated conformations of VSD and the pore (S6). Analysis of these conformations revealed that VSD-to-pore mechanical coupling during activation gating involves outward translation of the voltage sensor, accompanied by a translation away from the pore and clockwise twist. These motions cause pore opening by moving the S4-S5 linker upward and away from the pore, providing space for the S6 tails to move away from each other. Single channel records, computed from the simulated motion trajectories during gating, have stochastic properties similar to experimentally recorded traces. Macroscopic current through an ensemble of channels displays two key properties of Kv7.1: an initial delay of activation and fast inactivation. The simulations suggest a molecular mechanism for fast inactivation; a large twist of the VSD following its outward translation results in movement of the base of the S4-S5 linker toward the pore, eliminating open pore conformations to cause inactivation.
Copyright © 2016 The Authors. Published by Elsevier Ltd.. All rights reserved.

Entities:  

Keywords:  Cardiac arrhythmia; Cardiac electrophysiology; Computational biology; Ion-channel gating; Mechanical coupling

Mesh:

Substances:

Year:  2015        PMID: 26743208      PMCID: PMC4955398          DOI: 10.1016/j.pbiomolbio.2015.12.014

Source DB:  PubMed          Journal:  Prog Biophys Mol Biol        ISSN: 0079-6107            Impact factor:   3.667


  53 in total

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4.  Dominant-negative KvLQT1 mutations underlie the LQT1 form of long QT syndrome.

Authors:  F Y Shalaby; P C Levesque; W P Yang; W A Little; M L Conder; T Jenkins-West; M A Blanar
Journal:  Circulation       Date:  1997-09-16       Impact factor: 29.690

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6.  Statistical properties of ion channel records. Part I: relationship to the macroscopic current.

Authors:  Ali Nekouzadeh; Yoram Rudy
Journal:  Math Biosci       Date:  2007-05-04       Impact factor: 2.144

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Review 8.  Hinges, swivels and switches: the role of prolines in signalling via transmembrane alpha-helices.

Authors:  M S Sansom; H Weinstein
Journal:  Trends Pharmacol Sci       Date:  2000-11       Impact factor: 14.819

9.  In vitro molecular interactions and distribution of KCNE family with KCNQ1 in the human heart.

Authors:  Saïd Bendahhou; Céline Marionneau; Karinne Haurogne; Marie-Madeleine Larroque; Renaud Derand; Viktoria Szuts; Denis Escande; Sophie Demolombe; Jacques Barhanin
Journal:  Cardiovasc Res       Date:  2005-03-21       Impact factor: 10.787

10.  Extent of voltage sensor movement during gating of shaker K+ channels.

Authors:  David J Posson; Paul R Selvin
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4.  Voltage vs. Ligand I: Structural basis of the intrinsic flexibility of S3 segment and its significance in ion channel activation.

Authors:  Daniel Balleza; Mario E Rosas; Sergio Romero-Romero
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  4 in total

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