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体外心脏组织改进机电模型的样本特异性适配

Sample-specific adaption of an improved electro-mechanical model of in vitro cardiac tissue.

作者信息

Frotscher Ralf, Muanghong Danita, Dursun Gözde, Goßmann Matthias, Temiz-Artmann Ayşegül, Staat Manfred

机构信息

Aachen University of Applied Sciences, Institute of Bioengineering, Biomechanics Lab, Heinrich-Mußmann-Straße 1, 52428 Jülich, Germany.

Aachen University of Applied Sciences, Institute of Bioengineering, Lab of Medical and Molecular Biology, Heinrich-Mußmann-Straße 1, 52428 Jülich, Germany.

出版信息

J Biomech. 2016 Aug 16;49(12):2428-35. doi: 10.1016/j.jbiomech.2016.01.039. Epub 2016 Feb 11.

Abstract

We present an electromechanically coupled computational model for the investigation of a thin cardiac tissue construct consisting of human-induced pluripotent stem cell-derived atrial, ventricular and sinoatrial cardiomyocytes. The mechanical and electrophysiological parts of the finite element model, as well as their coupling are explained in detail. The model is implemented in the open source finite element code Code_Aster and is employed for the simulation of a thin circular membrane deflected by a monolayer of autonomously beating, circular, thin cardiac tissue. Two cardio-active drugs, S-Bay K8644 and veratridine, are applied in experiments and simulations and are investigated with respect to their chronotropic effects on the tissue. These results demonstrate the potential of coupled micro- and macroscopic electromechanical models of cardiac tissue to be adapted to experimental results at the cellular level. Further model improvements are discussed taking into account experimentally measurable quantities that can easily be extracted from the obtained experimental results. The goal is to estimate the potential to adapt the presented model to sample specific cell cultures.

摘要

我们提出了一种机电耦合计算模型,用于研究由人类诱导多能干细胞衍生的心房、心室和窦房结心肌细胞组成的薄心脏组织构建体。详细解释了有限元模型的力学和电生理部分及其耦合。该模型在开源有限元代码Code_Aster中实现,并用于模拟由单层自主跳动的圆形薄心脏组织偏转的薄圆形膜。在实验和模拟中应用了两种心脏活性药物S-Bay K8644和藜芦碱,并研究了它们对组织的变时作用。这些结果证明了心脏组织的微观和宏观机电耦合模型适应细胞水平实验结果的潜力。考虑到可以从获得的实验结果中轻松提取的实验可测量量,讨论了进一步的模型改进。目标是估计将所提出的模型应用于特定样本细胞培养的潜力。

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