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心脏机电模型:从细胞到器官。

Cardiac electromechanical models: from cell to organ.

机构信息

Department of Biomedical Engineering and Institute for Computational Medicine, Johns Hopkins University Baltimore, MD, USA.

出版信息

Front Physiol. 2011 Aug 11;2:43. doi: 10.3389/fphys.2011.00043. eCollection 2011.

Abstract

The heart is a multiphysics and multiscale system that has driven the development of the most sophisticated mathematical models at the frontiers of computational physiology and medicine. This review focuses on electromechanical (EM) models of the heart from the molecular level of myofilaments to anatomical models of the organ. Because of the coupling in terms of function and emergent behaviors at each level of biological hierarchy, separation of behaviors at a given scale is difficult. Here, a separation is drawn at the cell level so that the first half addresses subcellular/single-cell models and the second half addresses organ models. At the subcellular level, myofilament models represent actin-myosin interaction and Ca-based activation. The discussion of specific models emphasizes the roles of cooperative mechanisms and sarcomere length dependence of contraction force, considered to be the cellular basis of the Frank-Starling law. A model of electrophysiology and Ca handling can be coupled to a myofilament model to produce an EM cell model, and representative examples are summarized to provide an overview of the progression of the field. The second half of the review covers organ-level models that require solution of the electrical component as a reaction-diffusion system and the mechanical component, in which active tension generated by the myocytes produces deformation of the organ as described by the equations of continuum mechanics. As outlined in the review, different organ-level models have chosen to use different ionic and myofilament models depending on the specific application; this choice has been largely dictated by compromises between model complexity and computational tractability. The review also addresses application areas of EM models such as cardiac resynchronization therapy and the role of mechano-electric coupling in arrhythmias and defibrillation.

摘要

心脏是一个多物理和多尺度系统,它推动了计算生理学和医学前沿最复杂的数学模型的发展。本综述重点介绍了从肌丝分子水平到器官解剖模型的心脏机电(EM)模型。由于在功能和涌现行为方面的耦合,在给定的尺度上分离行为是困难的。在这里,在细胞水平上进行了分离,因此前半部分解决了亚细胞/单细胞模型,后半部分解决了器官模型。在亚细胞水平上,肌丝模型代表了肌动球蛋白相互作用和基于 Ca 的激活。具体模型的讨论强调了协同机制和收缩力的肌节长度依赖性的作用,这被认为是弗兰克-斯塔林定律的细胞基础。电生理学和 Ca 处理模型可以与肌丝模型耦合,产生 EM 细胞模型,并且总结了代表性示例,以提供该领域进展的概述。综述的后半部分涵盖了器官水平的模型,这些模型需要将电分量作为反应扩散系统和机械分量进行求解,其中心肌细胞产生的主动张力通过连续力学方程描述器官的变形。如综述所述,不同的器官水平模型根据特定的应用选择使用不同的离子和肌丝模型;这种选择在很大程度上取决于模型复杂性和计算可处理性之间的折衷。该综述还介绍了 EM 模型的应用领域,如心脏再同步治疗以及机械电耦合并发放电在心律失常中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8145/3154390/c4e4f3fb51c7/fphys-02-00043-g001.jpg

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