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人体心肌中心脏电机械学的定量重建:电生理模型与张力产生模型的整合

Quantitative reconstruction of cardiac electromechanics in human myocardium: assembly of electrophysiologic and tension generation models.

作者信息

Sachse Frank B, Seemann Gunnar, Chaisaowong Kraisorn, Weiss Daniel

机构信息

Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, Utah 84112, USA.

出版信息

J Cardiovasc Electrophysiol. 2003 Oct;14(10 Suppl):S210-8. doi: 10.1046/j.1540.8167.90313.x.

Abstract

INTRODUCTION

Myocytes from normal and failing myocardium show significant differences in electromechanical behavior. Mathematical modeling of the behavior provides insights into the underlying physiologic and pathophysiologic mechanisms. Electromechanical models of cardiomyocytes exist for various species, but models of human myocytes are lacking.

METHODS AND RESULTS

A mathematical model of electromechanics in normal and failing cardiac myocytes in humans was created by assembly and adaptation of parameters of an electrophysiologic model at the level of single cells and a force development model at the level of the sarcomere. The adaptation was performed using data from recent studies of ventricular myocytes and myocardium. The model was applied to quantitatively reconstruct measurement data from different experimental studies of normal and failing myocardium. Several simulations were performed to quantify the transmembrane voltage Vm, intracellular concentration of calcium[Ca2+]i, the [Ca2+]i-force relationship, and force transients. Furthermore, frequency dependencies and restitution of action voltage duration to 90% recovery APD90, peak [Ca2+]i, duration to 50% force recovery FD50, and peak force were determined.

CONCLUSION

The presented mathematical model was capable of quantitatively reconstructing data obtained from different studies of electrophysiology and force development in normal and failing myocardium of humans. In future work, the model can serve as a component for studying macroscopic mechanisms of excitation propagation, metabolism, and electromechanics in human myocardium.

摘要

引言

正常心肌和衰竭心肌中的心肌细胞在电机械行为上存在显著差异。对这种行为进行数学建模有助于深入了解潜在的生理和病理生理机制。目前已存在针对多种物种心肌细胞的电机械模型,但缺乏人类心肌细胞的模型。

方法与结果

通过整合和调整单细胞水平的电生理模型参数以及肌节水平的力产生模型参数,构建了人类正常和衰竭心肌细胞的电机械数学模型。利用近期关于心室肌细胞和心肌的研究数据进行参数调整。该模型用于定量重建来自正常和衰竭心肌不同实验研究的测量数据。进行了多项模拟,以量化跨膜电压Vm、细胞内钙离子浓度[Ca2+]i、[Ca2+]i-力关系以及力瞬变。此外,还确定了动作电压持续时间恢复至90%时的频率依赖性和恢复情况(APD90)、[Ca2+]i峰值、力恢复至50%时的持续时间(FD50)以及峰值力。

结论

所提出的数学模型能够定量重建从人类正常和衰竭心肌的不同电生理和力产生研究中获得的数据。在未来的工作中,该模型可作为研究人类心肌兴奋传播、代谢和电机械宏观机制的一个组成部分。

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