Trigger vs. Substrate: Multi-Dimensional Modulation of QT-Prolongation Associated Arrhythmic Dynamics by a hERG Channel Activator

被引:15
作者
Colman, Michael A. [1 ,2 ]
Alday, Erick A. Perez [3 ]
Holden, Arun V. [1 ,2 ]
Benson, Alan P. [1 ,2 ]
机构
[1] Univ Leeds, Sch Biomed Sci, Leeds, W Yorkshire, England
[2] Univ Leeds, Multidisciplinary Cardiovasc Res Ctr, Leeds, W Yorkshire, England
[3] Oregon Hlth & Sci Univ, Div Cardiovasc Med, Portland, OR 97201 USA
基金
英国医学研究理事会;
关键词
QT interval; action potential duration; arrhythmia trigger; arrhythmia substrate; hERG activators; computational modeling; HEART-FAILURE; CARDIAC-ARRHYTHMIAS; VENTRICULAR-WALL; ANTIARRHYTHMIC-DRUGS; IMPULSE PROPAGATION; SUDDEN-DEATH; M-CELLS; CALCIUM; MECHANISMS; ELECTROPHYSIOLOGY;
D O I
10.3389/fphys.2017.00757
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Background: Prolongation of the QT interval of the electrocardiogram (ECG), underlain by prolongation of the action potential duration (APD) at the cellular level, is linked to increased vulnerability to cardiac arrhythmia. Pharmacological management of arrhythmia associated with QT prolongation is typically achieved through attempting to restore APD to control ranges, reversing the enhanced vulnerability to Ca2+-dependent afterdepolarisations (arrhythmia triggers) and increased transmural dispersion of repolarisation (arrhythmia substrate) associated with APD prolongation. However, such pharmacological modulation has been demonstrated to have limited effectiveness. Understanding the integrative functional impact of pharmacological modulation requires simultaneous investigation of both the trigger and substrate. Methods: We implemented a multi-scale (cell and tissue) in silico approach using a model of the human ventricular action potential, integrated with a model of stochastic 3D spatiotemporal Ca2+ dynamics, and parameter modification to mimic prolonged QT conditions. We used these models to examine the efficacy of the hERG activator MC-II-157c in restoring APD to control ranges, examined its effects on arrhythmia triggers and substrates, and the interaction of these arrhythmia triggers and substrates. Results: QT prolongation conditions promoted the development of spontaneous release events underlying afterdepolarisations during rapid pacing. MC-II-157c applied to prolonged QT conditions shortened the APD, inhibited the development of afterdepolarisations and reduced the probability of afterdepolarisations manifesting as triggered activity in single cells. In tissue, QT prolongation resulted in an increased transmural dispersion of repolarisation, which manifested as an increased vulnerable window for uni-directional conduction block. In some cases, MC-II-157c further increased the vulnerable window through its effects on INa. The combination of stochastic release event modulation and transmural dispersion of repolarisation modulation by MC-II-157c resulted in an integrative behavior wherein the arrhythmia trigger is reduced but the arrhythmia substrate is increased, leading to variable and non-linear overall vulnerability to arrhythmia. Conclusion: The relative balance of reduced trigger and increased substrate underlies a multi-dimensional role of MC-II-157c in modulation of cardiac arrhythmia vulnerability associated with prolonged QT interval.
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页数:18
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共 58 条
[1]   Novel non-invasive algorithm to identify the origins of re-entry and ectopic foci in the atria from 64-lead ECGs: A computational study [J].
Alday, Erick A. Perez ;
Colman, Michael A. ;
Langley, Philip ;
Zhang, Henggui .
PLOS COMPUTATIONAL BIOLOGY, 2017, 13 (03)
[2]   Comparison of Electric- and Magnetic-Cardiograms Produced by Myocardial Ischemia in Models of the Human Ventricle and Torso [J].
Alday, Erick A. Perez ;
Ni, Haibo ;
Zhang, Chen ;
Colman, Michael A. ;
Gan, Zizhao ;
Zhang, Henggui .
PLOS ONE, 2016, 11 (08)
[3]   A New Algorithm to Diagnose Atrial Ectopic Origin from Multi Lead ECG Systems - Insights from 3D Virtual Human Atria and Torso [J].
Alday, Erick A. Perez ;
Colman, Michael A. ;
Langley, Philip ;
Butters, Timothy D. ;
Higham, Jonathan ;
Workman, Antony J. ;
Hancox, Jules C. ;
Zhang, Henggui .
PLOS COMPUTATIONAL BIOLOGY, 2015, 11 (01)
[4]   Modulation of transmural repolarization [J].
Antzelevitch, C .
COMMUNICATIVE CARDIAC CELL, 2005, 1047 :314-323
[5]   M Cells in the Human Heart [J].
Antzelevitch, Charles .
CIRCULATION RESEARCH, 2010, 106 (05) :815-817
[6]   The canine virtual ventricular wall: A platform for dissecting pharmacological effects on propagation and arrhythmogenesis [J].
Benson, Alan P. ;
Aslanidi, Oleg V. ;
Zhang, Henggui ;
Holden, Arun V. .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 2008, 96 (1-3) :187-208
[7]   Virtual cell and tissue dynamics of ectopic activation of the ventricles [J].
Benson, Alan P. ;
Halley, Graeme ;
Li, Pan ;
Tong, Wing C. ;
Holden, Arun V. .
CHAOS, 2007, 17 (01)
[8]   Construction and validation of anisotropic and orthotropic ventricular geometries for quantitative predictive cardiac electrophysiology [J].
Benson, Alan P. ;
Bernus, Olivier ;
Dierckx, Hans ;
Gilbert, Stephen H. ;
Greenwood, John P. ;
Holden, Arun V. ;
Mohee, Kevin ;
Plein, Sven ;
Radjenovic, Aleksandra ;
Ries, Michael E. ;
Smith, Godfrey L. ;
Sourbron, Steven ;
Walton, Richard D. .
INTERFACE FOCUS, 2011, 1 (01) :101-116
[9]   Quantitative prediction of the arrhythmogenic effects of de novo hERG mutations in computational models of human ventricular tissues [J].
Benson, Alan P. ;
Al-Owais, Moza ;
Holden, Arun V. .
EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2011, 40 (05) :627-639
[10]   Semianalytical approach to criteria for ignition of excitation waves [J].
Bezekci, B. ;
Idris, I. ;
Simitev, R. D. ;
Biktashev, V. N. .
PHYSICAL REVIEW E, 2015, 92 (04)