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Fast Multiscale Modeling of Cardiac Electrophysiology Including Purkinje System

机译:包括Purkinje系统在内的心脏电生理的快速多尺度建模

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In this paper, we present a modeling methodology to couple the cardiac conduction system to cardiac myocytes through a model of Purkinje-ventricular junctions to yield fast and realistic electrical activation of the ventricles. A patient-specific biventricular geometry is obtained from processing computed tomography scan data. A one-manifold implementation of the fast marching method based on Eikonal-type equations is used for modeling heart electrophysiology, which facilitates the multiscale 1-D–3-D coupling at very low computational costs. The method is illustrated in in-silico experiments where we analyze and compare alternative pacing strategies on the same patient-specific anatomy. We also show very good agreement between the results from the proposed approach and more detailed and comprehensive biophysical models for modeling cardiac electrophysiology. The effect of atrioventricular delay on the distribution of activation time in myocardium is studied with two experiments. Given the reasonable computational times and realistic activation sequences provided by our method, it can have an important clinical impact on the selection of optimal implantation sites of pacing leads or placement of ablation catheter’s tip in the context of cardiac rhythm management therapies.
机译:在本文中,我们提出了一种建模方法,可通过Purkinje-脑室连接模型将心脏传导系统耦合到心肌细胞,以产生快速而真实的心室电激活。从特定的计算机断层扫描数据中获取患者特定的双心室几何形状。一种基于Eikonal型方程的快速进样方法的流形实现可用于对心脏电生理进行建模,从而以非常低的计算成本促进了多尺度的1-D–3-D耦合。该方法在计算机模拟实验中得到了说明,我们在该实验中分析和比较了针对同一患者特定解剖结构的其他起搏策略。我们还显示出所提出的方法的结果与用于建模心脏电生理的更详细和全面的生物物理模型之间的很好的一致性。通过两个实验研究了房室延迟对心肌激活时间分布的影响。考虑到我们的方法提供的合理的计算时间和现实的激活顺序,在心律管理治疗的背景下,它可能会对起搏导线最佳植入部位的选择或消融导管尖端的放置产生重要的临床影响。

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