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首页> 外文期刊>PLoS Computational Biology >Impact of Sarcoplasmic Reticulum Calcium Release on Calcium Dynamics and Action Potential Morphology in Human Atrial Myocytes: A Computational Study
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Impact of Sarcoplasmic Reticulum Calcium Release on Calcium Dynamics and Action Potential Morphology in Human Atrial Myocytes: A Computational Study

机译:肌质网钙释放对人心房肌细胞钙动力学和动作电位形态的影响:一项计算研究

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Electrophysiological studies of the human heart face the fundamental challenge that experimental data can be acquired only from patients with underlying heart disease. Regarding human atria, there exist sizable gaps in the understanding of the functional role of cellular Ca2+ dynamics, which differ crucially from that of ventricular cells, in the modulation of excitation-contraction coupling. Accordingly, the objective of this study was to develop a mathematical model of the human atrial myocyte that, in addition to the sarcolemmal (SL) ion currents, accounts for the heterogeneity of intracellular Ca2+ dynamics emerging from a structurally detailed sarcoplasmic reticulum (SR). Based on the simulation results, our model convincingly reproduces the principal characteristics of Ca2+ dynamics: 1) the biphasic increment during the upstroke of the Ca2+ transient resulting from the delay between the peripheral and central SR Ca2+ release, and 2) the relative contribution of SL Ca2+ current and SR Ca2+ release to the Ca2+ transient. In line with experimental findings, the model also replicates the strong impact of intracellular Ca2+ dynamics on the shape of the action potential. The simulation results suggest that the peripheral SR Ca2+ release sites define the interface between Ca2+ and AP, whereas the central release sites are important for the fire-diffuse-fire propagation of Ca2+ diffusion. Furthermore, our analysis predicts that the modulation of the action potential duration due to increasing heart rate is largely mediated by changes in the intracellular Na+ concentration. Finally, the results indicate that the SR Ca2+ release is a strong modulator of AP duration and, consequently, myocyte refractoriness/excitability. We conclude that the developed model is robust and reproduces many fundamental aspects of the tight coupling between SL ion currents and intracellular Ca2+ signaling. Thus, the model provides a useful framework for future studies of excitation-contraction coupling in human atrial myocytes.
机译:人类心脏的电生理研究面临着根本的挑战,即只能从患有潜在心脏病的患者那里获取实验数据。关于人类心房,在了解细胞Ca2 +动力学功能的作用方面存在很大的差距,在激发-收缩耦合的调节方面与心室细胞的关键作用截然不同。因此,本研究的目的是建立人类心房肌细胞的数学模型,除了肌膜(SL)离子流外,还应说明结构细化的肌质网(SR)产生的细胞内Ca2 +动力学的异质性。基于仿真结果,我们的模型令人信服地再现了Ca2 +动力学的主要特征:1)瞬态冲程中Ca2 +瞬变的双相增量,这是由外围和中心SR Ca2 +释放之间的延迟引起的; 2)SL的相对贡献Ca2 +电流和SR Ca2 +释放至Ca2 +瞬变。与实验结果一致,该模型还复制了细胞内Ca2 +动力学对动作电位形状的强烈影响。仿真结果表明,外围SR Ca2 +释放位点定义了Ca2 +和AP之间的界面,而中央释放位点对Ca2 +扩散的火扩散-火传播很重要。此外,我们的分析预测,由于心率增加而引起的动作电位持续时间的调节很大程度上是由细胞内Na +浓度的变化介导的。最后,结果表明SR Ca2 +释放是AP持续时间的强调节剂,因此是心肌细胞难治性/兴奋性的调节剂。我们得出的结论是,开发的模型很健壮,并再现了SL离子电流与细胞内Ca2 +信号传导之间紧密耦合的许多基本方面。因此,该模型为将来在人心房肌细胞中的兴奋-收缩偶联研究提供了有用的框架。

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