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对非偶联心肌细胞群体中单离子通道阻断的现象学分析。

Phenomenological analysis of simple ion channel block in large populations of uncoupled cardiomyocytes.

机构信息

School of Mathematics & Statistics, University of Glasgow, Glasgow G12 8QQ, UK.

Institute of Mathematical Sciences, Universiti Malaya, 50603 Kuala Lumpur, Malaysia.

出版信息

Math Med Biol. 2023 Jun 14;40(2):175-198. doi: 10.1093/imammb/dqad001.

Abstract

Current understanding of arrhythmia mechanisms and design of anti-arrhythmic drug therapies hinges on the assumption that myocytes from the same region of a single heart have similar, if not identical, action potential waveforms and drug responses. On the contrary, recent experiments reveal significant heterogeneity in uncoupled healthy myocytes both from different hearts as well as from identical regions within a single heart. In this work, a methodology is developed for quantifying the individual electrophysiological properties of large numbers of uncoupled cardiomyocytes under ion channel block in terms of the parameters values of a conceptual fast-slow model of electrical excitability. The approach is applied to a population of nearly 500 rabbit ventricular myocytes for which action potential duration (APD) before and after the application of the drug nifedipine was experimentally measured (Lachaud et al., 2022, Cardiovasc. Res.). To this end, drug action is represented by a multiplicative factor to an effective ion conductance, a closed form asymptotic expression for APD is derived and inverted to determine model parameters as functions of APD and $\varDelta $APD (drug-induced change in APD) for each myocyte. Two free protocol-related quantities are calibrated to experiment using an adaptive-domain procedure based on an original assumption of optimal excitability. The explicit APD expression and the resulting set of model parameter values allow (a) direct evaluation of conditions necessary to maintain fixed APD or $\varDelta $APD, (b) predictions of the proportion of cells remaining excitable after drug application, (c) predictions of stimulus period dependency and (d) predictions of dose-response curves, the latter being in agreement with additional experimental data.

摘要

目前,心律失常机制的认识和抗心律失常药物治疗的设计都基于这样一个假设,即来自同一心脏区域的心肌细胞具有相似的(如果不是相同的)动作电位波形和药物反应。相反,最近的实验表明,即使在同一心脏的相同区域,去耦的健康心肌细胞之间也存在显著的异质性。在这项工作中,开发了一种方法,用于根据电兴奋性的概念性快慢模型的参数值,对离子通道阻断下大量去耦心肌细胞的个体电生理特性进行量化。该方法应用于近 500 个兔心室心肌细胞的群体,这些细胞的动作电位持续时间(APD)在应用硝苯地平药物前后都进行了实验测量(Lachaud 等人,2022 年,心血管研究)。为此,药物作用通过一个有效离子电导的乘法因子来表示,导出了 APD 的封闭形式渐近表达式,并将其反转,以确定模型参数作为每个心肌细胞的 APD 和 $\varDelta $APD(药物引起的 APD 变化)的函数。使用基于最优兴奋性的原始假设的自适应域程序,校准了两个与协议相关的自由参数,使其与实验相吻合。明确的 APD 表达式和由此产生的模型参数值集允许:(a)直接评估维持固定 APD 或 $\varDelta $APD 的必要条件;(b)预测药物应用后仍保持兴奋的细胞比例;(c)预测刺激周期依赖性;(d)预测剂量反应曲线,后者与额外的实验数据一致。

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