Vetter F J, McCulloch A D
Department of Bioengineering, University of California San Diego, La Jolla 92093-0412, USA.
Prog Biophys Mol Biol. 1998;69(2-3):157-83. doi: 10.1016/s0079-6107(98)00006-6.
The three-dimensional geometry and anisotropic properties of the heart give rise to nonhomogeneous distributions of stress, strain, electrical activation and repolarization. In this article we review the ventricular geometry and myofiber architecture of the heart, and the experimental and modeling studies of three-dimensional cardiac mechanics and electrophysiology. The development of a three-dimensional finite element model of the rabbit ventricular geometry and fiber architecture is described in detail. Finally, we review the experimental results, from the level of the cell to the intact organ, which motivate the development of coupled three-dimensional models of cardiac electromechanics and mechanoelectric feedback.
心脏的三维几何形状和各向异性特性导致了应力、应变、电激活和复极化的非均匀分布。在本文中,我们回顾了心脏的心室几何形状和肌纤维结构,以及三维心脏力学和电生理学的实验和建模研究。详细描述了兔心室几何形状和纤维结构的三维有限元模型的开发。最后,我们回顾了从细胞水平到完整器官水平的实验结果,这些结果推动了心脏机电耦合和机械电反馈三维模型的发展。