Soto Iglesias David, Duchateau Nicolas, Kostantyn Butakov Constantine Butakoff, Andreu David, Fernandez-Armenta Juan, Bijnens Bart, Berruezo Antonio, Sitges Marta, Camara Oscar
PhySense, Information and Communication Technologies DepartmentUniversitat Pompeu Fabra.
Cardiology DepartmentThorax Institute, Hospital Clinic.
IEEE J Transl Eng Health Med. 2016 Dec 16;5:1900215. doi: 10.1109/JTEHM.2016.2634006. eCollection 2017.
Electro-anatomical maps (EAMs) are commonly acquired in clinical routine for guiding ablation therapies. They provide voltage and activation time information on a 3-D anatomical mesh representation, making them useful for analyzing the electrical activation patterns in specific pathologies. However, the variability between the different acquisitions and anatomies hampers the comparison between different maps. This paper presents two contributions for the analysis of electrical patterns in EAM data from biventricular surfaces of cardiac chambers. The first contribution is an integrated automatic 2-D disk representation (2-D bull's eye plot) of the left ventricle (LV) and right ventricle (RV) obtained with a quasi-conformal mapping from the 3-D EAM meshes, that allows an analysis of cardiac resynchronization therapy (CRT) lead positioning, interpretation of global (total activation time), and local indices (local activation time (LAT), surrogates of conduction velocity, inter-ventricular, and transmural delays) that characterize changes in the electrical activation pattern. The second contribution is a set of indices derived from the electrical activation: speed maps, computed from LAT values, to study the electrical wave propagation, and histograms of isochrones to analyze regional electrical heterogeneities in the ventricles. We have applied the proposed methods to look for the underlying physiological mechanisms of left bundle branch block (LBBB) and CRT, with the goal of optimizing the therapy by improving CRT response. To better illustrate the benefits of the proposed tools, we created a set of synthetically generated and fully controlled activation patterns, where the proposed representation and indices were validated. Then, the proposed analysis tools are used to analyze EAM data from an experimental swine model of induced LBBB with an implanted CRT device. We have analyzed and compared the electrical activation patterns at baseline, LBBB, and CRT stages in four animals: two without any structural disease and two with an induced infarction. By relating the CRT lead location with electrical dyssynchrony, we evaluated current hypotheses about lead placement in CRT and showed that optimal pacing sites should target the RV lead close to the apex and the LV one distant from it.
在临床常规中,常用于指导消融治疗的电解剖图(EAMs)通常会被获取。它们在三维解剖网格表示上提供电压和激活时间信息,这使得它们对于分析特定病理情况下的电激活模式很有用。然而,不同采集和解剖结构之间的变异性阻碍了不同地图之间的比较。本文提出了两项有助于分析来自心脏双心室表面的EAM数据中的电模式的方法。第一项贡献是通过从三维EAM网格进行拟共形映射获得的左心室(LV)和右心室(RV)的集成自动二维圆盘表示(二维靶心图),它允许分析心脏再同步治疗(CRT)导线定位、整体(总激活时间)解释以及局部指标(局部激活时间(LAT)、传导速度替代指标、心室间和透壁延迟),这些指标表征了电激活模式的变化。第二项贡献是一组从电激活中得出的指标:根据LAT值计算的速度图,用于研究电波传播,以及等时线直方图,用于分析心室中的区域电不均匀性。我们已应用所提出的方法来寻找左束支传导阻滞(LBBB)和CRT的潜在生理机制,目标是通过改善CRT反应来优化治疗。为了更好地说明所提出工具的益处,我们创建了一组合成生成且完全可控的激活模式,在所创建的模式中对所提出的表示和指标进行了验证。然后,所提出的分析工具被用于分析来自植入CRT装置的诱导性LBBB实验猪模型的EAM数据。我们分析并比较了四只动物在基线、LBBB和CRT阶段的电激活模式:两只没有任何结构疾病的动物和两只患有诱导性梗死的动物。通过将CRT导线位置与电不同步相关联,我们评估了当前关于CRT中导线放置的假设,并表明最佳起搏部位应将右心室导线靶向靠近心尖处,而左心室导线远离心尖处。