患者定制的左心房电解剖图的硅三维模拟和模型

G. Ríos-Muñoz, Sara Rocher, Antonio Artés-Rodríguez, Á. Arenal, J. Saiz, C. Sánchez
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引用次数: 0

摘要

心房颤动(AF)的机制仍在争论中,使得这种心律失常的治疗仍然是次优的,大多数治疗以标准方式应用,没有患者个性化。由于具有更好的空间分辨率和更高的采集点密度,使用多电极导管的电解剖测绘(EAM)的最新技术进步使医生能够更好地表征基底。利用这一技术,我们描述了一个工作流来建立个性化心房电生理模型的房颤患者。我们试图更好地预测治疗的结果,并在更具体的情况下研究房颤问题。我们利用300μm单元的六面体网格生成了EAM数据的生理三维模型,并在通用模型的基础上添加了纤维取向。我们利用窦性心律(SR)局部激活时间(LAT)图,结合邻近组织的LAT作为三联体点的平均CV,估算心房各区域的传导速度(CV)。我们还从纵向电导率和CV方面对Maleckar等人的细胞模型进行了表征,以个性化心房模型。我们能够在个性化模型上模拟SR和AF场景,并生成心房模型数据库以供将来分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Patient-Tailored In Silico 3D Simulations and Models From Electroanatomical Maps of the Left Atrium
The mechanisms underlying atrial fibrillation (AF) are still under debate, making treatments for this arrhythmia remain suboptimal, with most treatments applied in a standard fashion with no patient personalization. Recent technological advances in electroanatomical mapping (EAM) using multi-electrode catheter allow the physicians to better characterize the substrate, thanks to a better spatial resolution and higher density of acquisition points. Taking advantage of this technology, we describe a workflow to build personalized electrophysiological atrial models for AF patients. We seek to better predict the outcome of a treatment and study the AF problem in a more specific scenario. We generated physiological 3D models from the EAM data using hexahedral meshing of element size 300μm, and added fiber orientation based on a generic model. We used the local activation time (LAT) maps performed in sinus rhythm (SR) to estimate the conduction velocity (CV) of the regions in the atrium with a new method that combines the LATs of neighboring tissue as the average CV of triplets of points. We also characterized the cellular model by Maleckar et al. in terms of longitudinal conductivity and CV to personalize the atrial models. We were able to simulate SR and AF scenarios on the personalized models, and we generated a database of atrial models for future analysis.
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