Proarrhythmic consequences of a KCNQ1 AKAP-binding domain mutation - Computational models of whole cells and heterogeneous tissue

被引:92
作者
Saucerman, JJ
Healy, SN
Belik, ME
Puglisi, JL
McCulloch, AD [1 ]
机构
[1] Univ Calif San Diego, Dept Bioengn, Whitaker Inst Biomed Engn, La Jolla, CA 92037 USA
[2] Loyola Univ Chicago, Dept Physiol, Maywood, IL USA
关键词
beta-adrenergic signaling; arrhythmia; long-QT syndrome; computational model;
D O I
10.1161/01.RES.0000150055.06226.4e
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The KCNQ1-G589D gene mutation, associated with a long-QT syndrome, has been shown to disrupt yotiao-mediated targeting of protein kinase A and protein phosphatase-1 to the I-Ks channel. To investigate how this defect may lead to ventricular arrhythmia during sympathetic stimulation, we use integrative computational models of beta-adrenergic signaling, myocyte excitation-contraction coupling, and action potential propagation in a rabbit ventricular wedge. Paradoxically, we find that the KCNQ1-G589D mutation alone does not prolong the QT interval. But when coupled with beta-adrenergic stimulation in a whole-cell model, the KCNQ1-G589D mutation induced QT prolongation and transient afterdepolarizations, known cellular mechanisms for arrhythmogenesis. These cellular mechanisms amplified tissue heterogeneities in a three-dimensional rabbit ventricular wedge model, elevating transmural dispersion of repolarization and creating other T-wave abnormalities on simulated electrocardiograms. Increasing heart rate protected both single myocyte and the coupled myocardium models from arrhythmic consequences. These findings suggest that the KCNQ1-G589D mutation disrupts a critical link between beta-adrenergic signaling and myocyte electrophysiology, creating both triggers of cardiac arrhythmia and a myocardial substrate vulnerable to such electrical disturbances.
引用
收藏
页码:1216 / 1224
页数:9
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