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Filament dynamics in a computational model of re-entrant fibrillation in anatomically detailed canine ventricular anatomy

机译:细部解剖学的犬心室解剖学中折返性纤颤计算模型中的纤维动力学

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The aim of this study was to quantify the dynamics and interaction of filaments in a computational model of re-entrant ventricular fibrillation. We simulated cardiac action potential propagation in an anisotropic monodomain where excitation was described by the Fenton-Karma model with Beeler-Reuter restitution, and geometry by the Auckland canine ventricle. We initiated re-entry in the left and right ventricular free walls, as well as the septum. The number of filaments increased during the first 1.5 s before reaching a plateau with a mean value of about 40. The rate of increase was fastest for initiation in the left ventricular free wall and slowest for initiation in the right ventricular free wall. This study shows that useful information about filament dynamics can be gleaned from models of fibrillation in complex geometries, and suggests that regional anatomical features have an influence on the breakdown of re-entry in the ventricles.
机译:这项研究的目的是在折返性心室纤颤的计算模型中量化细丝的动力学和相互作用。我们模拟了各向异性动作域中心脏动作电位的传播,其中激励是通过Fenton-Karma模型(具有Beeler-Reuter恢复)描述的,而几何形状是由奥克兰犬的心室描述的。我们开始重新进入左,右心室自由壁以及隔垫。细丝数目在达到平稳状态的前1.5 s内增加,平均值约为40。增加速率在左心室游离壁中起始最快,而在右心室游离壁中起始最慢。这项研究表明,可以从复杂几何形状的原纤化模型中收集有关细丝动力学的有用信息,并表明区域解剖特征对心室再入的破坏有影响。

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