Ventricular Conduction System Modeling for Electrophysiological Simulation of the Porcine Heart

"Ricardo Maximiliano Rosales, Konstantinos A. Mountris, M. Doblaré, M. Mazo, Emilio L. Pueyo
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Abstract

Depolarization sequences triggering mechanical contraction of the heart are largely determined by the cardiac conduction system $(CS)$. Many biophysical models of cardiac electrophysiology still have poor representations of the $CS$. This work proposes a semiautomatic method for the generation of an anatomically-realistic porcine $CS$ that reproduces ventricular activation properties in swine computational models. Personalized swine biventricular models were built from magnetic resonance images. Electrical propagation was described by the monodomain model. The $CS$ was defined from manually-determined anatomic landmarks using geodesic paths and a fractal tree algorithm. Two $CS$ distributions were defined, one restricted to the subendocardium and another one by performing a subendo-to-intramyocardium projection based on histological porcine data. Depolarization patterns as well as left ventricular transmural and inter-ventricular delays were assessed to describe ventricular activation by the two $CS$ distributions. The electrical excitations calculated using the two $CS$ distributions were in good agreement with reported activation patterns. The pig-specific subendo-intramyocardial $CS$ led to improved reproduction of experimental activation delays in ventricular endocardium and epicardium.
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猪心脏电生理模拟的心室传导系统建模
触发心脏机械收缩的去极化序列主要由心脏传导系统(CS)决定。许多心脏电生理的生物物理模型仍然不能很好地表征CS。这项工作提出了一种半自动方法,用于生成解剖学上真实的猪CS,在猪计算模型中再现心室激活特性。利用磁共振图像建立个性化猪双心室模型。电传播用单域模型描述。CS是使用测地线路径和分形树算法从手动确定的解剖地标定义的。定义了两种$CS$分布,一种局限于心内膜下,另一种是根据猪的组织学数据进行心内膜下到心内膜内的投影。通过两个$CS$分布评估去极化模式以及左心室跨壁和心室间延迟来描述心室激活。使用两个$CS$分布计算的电激励与报道的激活模式很好地一致。猪特异性的心内膜下-心肌内$CS$可改善心室心内膜和心外膜实验性激活延迟的再现。
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