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Recent human ventricular cell action potential models under varied ischaemic conditions

机译:各种缺血情况下最新的人心室细胞动作电位模型

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Investigating arrhythmic mechanisms during ischaemia is essential to improve clinical therapy. However, experimental data in human is scarce. Computational models are an essential tool for bridging this gap. Recent human ventricular cell action potential (AP) models have been built with data from healthy cells, thus their applicability to studies of ischaemia is mostly unknown. We have carried out a simulation study in single cell and tissue under normal and varied ischaemic conditions using 4 recent human models: ten Tusscher et al. 2006 (TP06), Grandi et al. 2010 (GPB), Carro et al. 2011 (CRLP), and O'hara et al. 2011 (ORd). We varied two parameters that play an important role in arrhythmogenesis during ischaemia: extracellular potassium concentration ([K+]o) and peak conductance of the ATP-sensitive inward-rectifying potassium current (IK(ATP)). To assess the applicability of these models to simulate ischaemia, we calculated AP duration (APD) and post-repolarisation refractoriness (PRR), biomarkers of arrhythmic risk. Results show that all models displayed the expected APD shortening due to IK(ATP) activation and hyperkalaemia. Furthermore, all models, apart from the ORd, reproduced an increase in PRR. The GPB did not show propagation of excitation for [K+]o=9mM. This study suggests that the CRLP and TP06 models are the most suitable for performing human-specific simulations of arrhythmogenesis during myocardial ischaemia.
机译:研究缺血期间的心律失常机制对于改善临床治疗至关重要。但是,人体的实验数据很少。计算模型是弥合这一差距的重要工具。最近的人心室细胞动作电位(AP)模型已经用健康细胞的数据建立,因此它们在缺血性研究中的适用性几乎是未知的。我们已经使用4种最新的人类模型在正常和多种缺血条件下对单个细胞和组织进行了模拟研究:十个Tusscher等人。 2006(TP06),Grandi等。 2010(GPB),Carro等。 2011年(CRLP),以及O'hara等人。 2011(ORd)。我们改变了两个在缺血期间心律失常中起重要作用的参数:细胞外钾浓度([K + ] o)和ATP敏感的内向整流钾电流(IK(ATP))的峰值电导。为了评估这些模型模拟缺血的适用性,我们计算了AP持续时间(APD)和复极后耐火度(PRR),这是心律失常风险的生物标记。结果表明,由于IK(ATP)激活和高钾血症,所有模型均显示出预期的APD缩短。此外,除ORd之外,所有模型都再现了PRR的增加。对于[K + ] o = 9mM,GPB没有显示出激发传播。这项研究表明,CRLP和TP06模型最适合于进行针对人类的心肌缺血过程中心律失常的模拟。

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