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心脏交替变化的机械扰动控制

Mechanical perturbation control of cardiac alternans.

作者信息

Hazim Azzam, Belhamadia Youssef, Dubljevic Stevan

机构信息

Department of Biomedical Engineering, University of Alberta, Edmonton, Alberta, Canada T6G 2V2.

Department of Mathematics and Statistics, American University of Sharjah, Sharjah, United Arab Emirates.

出版信息

Phys Rev E. 2018 May;97(5-1):052407. doi: 10.1103/PhysRevE.97.052407.

Abstract

Cardiac alternans is a disturbance in heart rhythm that is linked to the onset of lethal cardiac arrhythmias. Mechanical perturbation control has been recently used to suppress alternans in cardiac tissue of relevant size. In this control strategy, cardiac tissue mechanics are perturbed via active tension generated by the heart's electrical activity, which alters the tissue's electric wave profile through mechanoelectric coupling. We analyze the effects of mechanical perturbation on the dynamics of a map model that couples the membrane voltage and active tension systems at the cellular level. Therefore, a two-dimensional iterative map of the heart beat-to-beat dynamics is introduced, and a stability analysis of the system of coupled maps is performed in the presence of a mechanical perturbation algorithm. To this end, a bidirectional coupling between the membrane voltage and active tension systems in a single cardiac cell is provided, and a discrete form of the proposed control algorithm, that can be incorporated in the coupled maps, is derived. In addition, a realistic electromechanical model of cardiac tissue is employed to explore the feasibility of suppressing alternans at cellular and tissue levels. Electrical activity is represented in two detailed ionic models, the Luo-Rudy 1 and the Fox models, while two active contractile tension models, namely a smooth variant of the Nash-Panfilov model and the Niederer-Hunter-Smith model, are used to represent mechanical activity in the heart. The Mooney-Rivlin passive elasticity model is employed to describe passive mechanical behavior of the myocardium.

摘要

心脏交替脉是一种与致命性心律失常发作相关的心律紊乱。机械扰动控制最近已被用于抑制相关大小心脏组织中的交替脉。在这种控制策略中,心脏组织力学通过心脏电活动产生的主动张力受到扰动,这通过机电耦合改变组织的电波轮廓。我们在细胞水平分析机械扰动对耦合膜电压和主动张力系统的映射模型动力学的影响。因此,引入了心跳间动态的二维迭代映射,并在存在机械扰动算法的情况下对耦合映射系统进行稳定性分析。为此,在单个心肌细胞中提供膜电压和主动张力系统之间的双向耦合,并推导可纳入耦合映射的所提出控制算法的离散形式。此外,采用逼真的心脏组织机电模型来探索在细胞和组织水平抑制交替脉的可行性。电活动在两个详细的离子模型(Luo-Rudy 1模型和Fox模型)中表示,而两个主动收缩张力模型,即Nash-Panfilov模型的平滑变体和Niederer-Hunter-Smith模型,用于表示心脏中的机械活动。采用Mooney-Rivlin被动弹性模型来描述心肌的被动力学行为。

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