A Novel Human Atrial Electromechanical Cardiomyocyte Model with Mechano-Calcium Feedback Effect

"Fazeelat Mazhar, Francesco Regazzoni, C. Bartolucci, C. Corsi, L. Dede’, A. Quarteroni, S. Severi
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Abstract

Electromechanical coupling is crucial for modeling a realistic representation of $Ca^{+2}$ transient and $Ca^{+2}$ cycling. Cellular $Ca^{+2}$ dynamics in atria differ fundamentally from the ventricles. A biophysically detailed electrophysiology model is hence necessary to reproduce the experimentally observed phenomena like $Ca^{+2}$ wave propagation in human atrial myocytes. In this work, we present a novel detailed and yet computationally efficient electrophysiology model, its coupling with a contraction myofilament model and the effect of mechano-calcium feedback on coupling. This novel electromechanical model was calibrated for a collection of human atrial data and was evaluated by reproducing the rate adaptation property of action potential, $Ca^{+2}$ transient and the active force. The aim of this article is to present a new electromechanical model for human atrial myocyte and to analyse the mechanism behind the rate adaptation.
一种具有机械钙反馈效应的新型人心房机电心肌细胞模型
机电耦合是模拟真实的$Ca^{+2}$瞬态和$Ca^{+2}$循环的关键。心房细胞Ca^{+2}$的动态与心室有本质区别。因此,需要一个生物物理上详细的电生理模型来重现实验观察到的现象,如Ca^{+2}$波在人心房肌细胞中的传播。在这项工作中,我们提出了一种新的详细的、计算效率高的电生理模型,它与收缩肌丝模型的耦合以及机械钙反馈对耦合的影响。该新颖的机电模型针对人类心房数据进行了校准,并通过再现动作电位、Ca^{+2}$瞬态和主动力的速率适应特性进行了评估。本文的目的是提出一种新的心房肌细胞机电模型,并分析其速率适应的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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