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Scroll Waves in 3D Virtual Human Atria: A Computational Study

机译:3D虚拟人类心房中的滚动波:计算研究

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摘要

Atrial fibrillation (AF) induced electrical remodelling of ionic channels shortens action potential duration and reduces atrial excitability. Experimental data of AF-induced electrical remodelling (AFER) from two previous studies on human atrial myocytes were incorporated into a human atrial cell computer model to simulate their effects on atrial electrical behaviour. The dynamical behaviors of excitation scroll waves in an anatomical 3D homogenous model of human atria were studied for control and AF conditions. Under control condition, scroll waves meandered in large area and became persistent when entrapped by anatomical obstacles. In this case, a mother rotor dominated atrial excitation. Action potentials from several sites behaved as if the atrium were paced rapidly. Under AF conditions, AFER increased the stability of re-entrant scroll waves by reducing meander. Scroll wave break up leads to wavelets underpinning sustained chronic AF. Our simulation results support the hypothesis that AF-induced electrical remodelling perpetuates and sustains AF.
机译:心房颤动(AF)引起的离子通道电重构缩短了动作电位的持续时间并降低了心房兴奋性。来自先前两项关于人心房肌细胞的AF诱发电重构(AFER)的实验数据被整合到人心房计算机模型中,以模拟其对心房电行为的影响。研究了在人体心房解剖3D均匀模型中激发涡旋波的动力学行为,以用于控制和AF条件。在控制条件下,涡旋波在大范围内蜿蜒曲折,并在被解剖学障碍物包裹时变得持久。在这种情况下,以母转子为主的心房兴奋。来自几个部位的动作电位表现得像中庭快速起搏一样。在AF条件下,AFER通过减少曲折来增强折返涡卷的稳定性。涡旋波破裂导致小波支撑持续的慢性房颤。我们的仿真结果支持以下假设:AF引起的电重构会持续并维持AF。

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