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In silico investigation of the functional effects of KCNQ1-G269S mutation in human ventricles

机译:在计算机上研究KCNQ1-G269S突变在人心室中的功能作用

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A recent study identified a loss-in-function mutation KCNQ1-G269S in long-QT patients who remained asymptomatic at rest but exhibited prolonged QT intervals after exercise, showing loss-of-function and blunted adrenergic activation in the slow component of delayed rectifier K+ current (IKs). The aim of this study was to evaluate the functional effects of the mutation in human ventricles through computer modelling. The O'Hara-Rudy model of human ventricular cells was modified to incorporate an updated model of IKs and an adrenergic activation model. The single cell models were then incorporated into a 1D strand model to quantify the effects of the mutation on tissue vulnerability in genesis of uni-directional conduction block. Using a 3D anatomical model of human ventricles and torso model, effects of the mutation on ventricular electrical activities and electrocardiograms (ECG) were simulated. It was shown that the mutation exerted moderate prolongations to action potential duration (APD) in the absence of adrenergic stimulation, and slightly increased the tissue vulnerability to produce unidirectional conduction block. These effects were much more pronounced after adrenergic stimulation. Simulated ECGs revealed moderate and severe QT prolongations for at rest and after exercise conditions respectively, which matched the clinical data. Our simulations provide insights into the pathological mechanisms of the KCNQ1-G269S mutation.
机译:最近的一项研究发现,在长时间QT的患者中,其功能丧失突变KCNQ1-G269S在休息时无症状,但运动后表现出延长的QT间隔,显示出功能丧失和延迟整流器K +缓慢成分中的肾上腺素激活减弱。当前(IK)。这项研究的目的是通过计算机建模评估突变在人类心室中的功能作用。修改了人心室细胞的O'Hara-Rudy模型,以合并更新的IK模型和肾上腺素激活模型。然后将单细胞模型整合到一维链模型中,以量化突变对单向传导阻滞起源中组织易损性的影响。使用人体心室和躯干模型的3D解剖模型,模拟了突变对心室电活动和心电图(ECG)的影响。结果表明,在没有肾上腺素刺激的情况下,该突变使动作电位持续时间(APD)适度延长,并略微增加了组织产生单向传导阻滞的脆弱性。肾上腺素刺激后,这些作用更为明显。模拟的ECG分别显示出在休息和运动后的中度和重度QT延长,与临床数据相符。我们的模拟提供了KCNQ1-G269S突变的病理机制的见解。

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