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在射血过程中优化心脏纤维方向以实现均匀的纤维应变。

Optimization of cardiac fiber orientation for homogeneous fiber strain during ejection.

作者信息

Rijcken J, Bovendeerd P H, Schoofs A J, van Campen D H, Arts T

机构信息

Department of Biophysics, Cardiovascular Research Institute Maastricht, Maastricht University, The Netherlands.

出版信息

Ann Biomed Eng. 1999 May-Jun;27(3):289-97. doi: 10.1114/1.147.

Abstract

The strain of muscle fibers in the heart is likely to be distributed uniformly over the cardiac walls during the ejection period of the cardiac cycle. Mathematical models of left ventricular (LV) wall mechanics have shown that the distribution of fiber strain during ejection is sensitive to the orientation of muscle fibers in the wall. In the present study, we tested the hypothesis that fiber orientation in the LV wall is such that fiber strain during ejection is as homogeneous as possible. A finite-element model of LV wall mechanics was set up to compute the distribution of fiber strain at the beginning (BE) and end (EE) of the ejection period of the cardiac cycle, with respect to a middiastolic reference state. The distribution of fiber orientation over the LV wall, quantified by three parameters, was systematically varied to minimize regional differences in fiber shortening during ejection and in the average of fiber strain at BE and EE. A well-defined optimum in the distribution of fiber orientation was found which was not significantly different from anatomical measurements. After optimization, the average of fiber strain at BE and EE was 0.025 +/-0.011 (mean+/-standard deviation) and the difference in fiber strain during ejection was 0.214+/-0.018. The results indicate that the LV structure is designed for maximum homogeneity of fiber strain during ejection.

摘要

在心动周期的射血期,心脏肌纤维的应变可能会均匀分布于心脏各壁。左心室(LV)壁力学的数学模型表明,射血期纤维应变的分布对壁内肌纤维的取向很敏感。在本研究中,我们检验了这样一个假设:LV壁内的纤维取向使得射血期的纤维应变尽可能均匀。建立了LV壁力学的有限元模型,以计算心动周期射血期开始(BE)和结束(EE)时相对于舒张中期参考状态的纤维应变分布。通过三个参数量化的LV壁上纤维取向的分布被系统地改变,以最小化射血期纤维缩短以及BE和EE时纤维应变平均值的区域差异。发现纤维取向分布存在一个明确的最优值,与解剖学测量结果无显著差异。优化后,BE和EE时纤维应变的平均值为0.025±0.011(均值±标准差),射血期纤维应变的差异为0.214±0.018。结果表明,LV结构的设计目的是使射血期纤维应变达到最大程度的均匀。

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