Silico和N588K-hERG相关短QT综合征遗传模型中心律失常机制的互补性

C. Du, Henggui Zhang, J. Hancox, Yihong Zhang
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引用次数: 1

摘要

先天性短QT综合征(SQTS)是一种罕见但危险的疾病,涉及心室极化缩短和心房和室性心律失常的风险增加。以首次发现的SQTS突变N588K-hERG为例,我们简要考虑了用于了解这种综合征心律失常发生机制的基础科学方法。联合通道电生理学和计算机模拟相结合,为N588K hERG相关SQTS中已识别的突变、加速复极和增加重返易感性之间的因果关系提供了见解。随后使用转基因兔模型或人诱导多能干细胞衍生的心肌细胞(hiPSC CMs)的研究进一步证明了在完整组织中重新出现重返、螺旋波活动和心律失常的机制。使用这些不同方法得出的研究结果之间的互补性使人们相信,总的来说,他们已经确定了主要的心律失常机制,并通过这种形式的QTS的I类抗心律失常药物对其进行了潜在的缓解。
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Complementarity between Arrhythmia Mechanisms Found in Silico and in Genetic Models of N588K-hERG Linked Short QT Syndrome
Congenital Short QT Syndrome (SQTS) is a rare but dangerous condition involving abbreviated ventricular repolarization and an increased risk of atrial and ventricular arrhythmias. Taking the example of the first identified SQTS mutation, N588K-hERG, we consider briefly the basic science approaches used to obtain an understanding of the mechanism(s) of arrhythmogenesis in this form of the syndrome. A combination of recombinant channel electrophysiology and in silico simulations has provided insights into causality between the identified mutation, accelerated repolarization and increased susceptibility to re-entry in N588K-hERG-linked SQTS. Subsequent studies employing a transgenic rabbit model or human induced pluripotent stem cell derived cardiomyocytes (hiPSC-CMs) have further demonstrated mechanisms predisposing to re-entry, spiral wave activity and arrhythmia in intact tissue. The complementarity between the findings made using these different approaches gives confidence that, collectively, they have identified major arrhythmia mechanisms and their potential mitigation by Class I antiarrhythmic drugs in this form of SQTS.
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