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用于量化杂交生物聚合物微悬臂梁上心肌细胞收缩力的流固相互作用三维模型。

A three-dimensional model of fluid-structural interactions for quantifying the contractile force for cardiomyocytes on hybrid biopolymer microcantilever.

作者信息

Park Jungyul, Ryu Suk-Kyu, Kim Jinseok, Cha Junghun, Baek Jeongeun, Park Sukho, Kim Byungkyu, Lee Sang Ho

机构信息

Whitaker Institute for Biomedical Engineering, Johns Hopkins University, 3400 N. Charles Street, Baltimore, MD 21218, USA.

出版信息

J Biomech. 2007;40(13):2823-30. doi: 10.1016/j.jbiomech.2007.03.026. Epub 2007 May 15.

Abstract

Quantitatively analysis of the contractility of cardiomyocytes is important for understanding the mechanism of heart failure as well as the molecular alterations in diseased heart cells. This paper presents a realistic computational model, which considers the three-dimensional fluid-structural interactions (FSI), to quantify the contractile force of cardiomyocytes on hybrid biopolymer microcantilevers. Prior to this study, only static modeling of the microscale cellular force has been reported. This study modeled the dynamics of cardiomyocytes on microcantilevers in a medium using the FSI. This realistic model was compared with static finite element modeling (FEM) analysis and the Stoney's equation-based analytical solution, and was validated by the deflections of the microcantilevers in the experimental results. Using harmonic response analysis in FSI modeling, the motion of a hybrid biopolymer microcantilever in the medium was identified as a second-order system and the influence of the dynamics of cardiomyocytes could be evaluated quantitatively.

摘要

定量分析心肌细胞的收缩性对于理解心力衰竭的机制以及病变心脏细胞中的分子改变至关重要。本文提出了一个考虑三维流固相互作用(FSI)的逼真计算模型,以量化心肌细胞对混合生物聚合物微悬臂梁的收缩力。在本研究之前,仅报道了微尺度细胞力的静态建模。本研究使用FSI对培养基中微悬臂梁上心肌细胞的动力学进行了建模。将这个逼真的模型与静态有限元建模(FEM)分析和基于斯托尼方程的解析解进行了比较,并通过实验结果中微悬臂梁的挠度进行了验证。在FSI建模中使用谐波响应分析,确定培养基中混合生物聚合物微悬臂梁的运动为二阶系统,并可以定量评估心肌细胞动力学的影响。

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