人体心脏组织电活动的有限元模型

S. M. Shuaiby, Mohsen A. Hassan, A. Sharkawy, A. M. Gad
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引用次数: 5

摘要

心脏动作电位的生物模拟模型已经成为一个非常有用的工具。它可以更好地理解与心脏电活动相关的复杂生物物理现象,如心律失常。在细胞水平上,心脏组织的电活动可以通过求解描述细胞膜电行为的普通微分方程(ode)系统来模拟。由于这种现象背后的生物物理过程是非线性的,变化非常迅速,因此ODE系统是一个需要用数值方法解决的挑战。此外,这些模型的实现对于商业有限元软件来说是一项艰巨的任务。本文对单域方程进行了有限元计算、模型建立和代码生成。所开发的代码与改进的FitzHugh-Nag umo (FHN)细胞电生理模型相结合,以实现从细胞水平到整个心脏水平的各向同性激励传播。采用MTALAB编程语言编制了所提出的独立有限元代码。模拟了心脏组织的二维谱图,研究了各向同性电活动的激励传播和复极化相位。心脏动作电位的模拟结果与已发表文献的实验结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A finite Element Model for the Electrical Activity in Human Cardiac Tissues
Biosimulation models of the heart action potential have become a very useful tool. It provides better understanding for the complex biophysical phenomena related to electrical activity in the heart s uch as cardiac arrhythmias. At cellular level, the electrical activity of cardiac tissues may be simulated by solving a system of ordinary deferential equations (ODEs) describing the electrical behavior of the cell membrane. Because the biophysical processes underlying this phenomenon are non-linear and change very rapidly, the ODE system is a challenge to be solved numerically. Furthermore, the implementation of these models is a hard task for commercial finite element software. In this paper a finite element formulation, model a nd code generation of monodomain equation has been conducted. The developed code is coupled with the modified FitzHugh-Nag umo (FHN) cell electrophysiological model in order to have isotropic excitation propagation starting from cell level to complete hea rt level. MTALAB programming language was used to build the proposed standalone finite element code. A two dimensional spec imen of heart tissues is simulated to show the behavior of the excitation propagation and the repolarization phase for isotropic electric al activity. Simulation results of the cardiac action potential have shown good agreements with the experimental measurements obtained from published literature.
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