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Vortex filament dynamics in computational models of ventricular fibrillation in the heart

机译:心脏室颤的计算模型中的涡旋纤维动力学

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摘要

In three-dimensional cardiac tissue, the re-entrant waves that sustain ventricular fibrillation rotate around a line of phase singularity or vortex filament. The aim of this study was to investigate how the behavior of these vortex filaments is influenced by membrane kinetics, initial conditions, and tissue geometry in computational models of excitable tissue. A monodomain model of cardiac tissue was used, with kinetics described by a three-variable simplified ionic model (3V-SIM). Two versions of 3V-SIM were used, one with steep action potential duration restitution, and one with reduced excitability. Re-entrant fibrillation was then simulated in three tissue geometries: a cube, a slab, and an anatomically detailed model of rabbit ventricles. Filaments were identified using a phase-based method, and the number, size, origin, and orientation of filaments was tracked throughout each simulation. The main finding of this study is that kinetics, initial conditions, geometry, and anisotropy all affected the number, proliferation, and orientation of vortex filaments in re-entrant fibrillation. An important finding of this study was that the behavior of vortex filaments in simplified slab geometry representing part of the ventricular wall did not necessarily predict behavior in an anatomically detailed model of the rabbit ventricles.
机译:在三维心脏组织中,维持心室纤颤的折返波围绕相位奇异点或涡旋细丝旋转。这项研究的目的是研究在可兴奋组织的计算模型中,膜动力学,初始条件和组织几何形状如何影响这些涡旋丝的行为。使用了心脏组织的单畴模型,其动力学由三变量简化离子模型(3V-SIM)描述。使用了两种版本的3V-SIM,一种具有陡峭的动作电位持续时间恢复能力,一种具有降低的兴奋性。然后在三种组织几何结构中模拟折返性原纤维形成:立方体,平板和兔脑室的解剖学详细模型。使用基于相位的方法识别细丝,并在每次模拟过程中跟踪细丝的数量,大小,来源和方向。这项研究的主要发现是动力学,初始条件,几何形状和各向异性都影响了折返原纤化中涡旋丝的数量,扩散和取向。这项研究的重要发现是,在代表部分心室壁的简化平板几何结构中,涡流丝的行为不一定能预测兔子心室解剖学模型中的行为。

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