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Personalized Computational Framework to Study Arrhythmia Mechanisms on Top of ECGI-Detected Substrate

机译:个性化计算框架,可在检测到的ECGI基质上研究心律失常机制

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Electrocardiographic Imaging (ECGI) can unmask electrical abnormalities that were difficult to detect using the standard 12-lead ECG. However, it is still challenging to interpret the potential arrhythmogenic consequence of electrical patterns found with ECGI. Here, we introduce a computational framework that allows personalized simulations of cardiac electrophysiology (EP) to mimic electrical substrate as detected in an individual, to study the interaction between that substrate and premature ventricular complexes (PVCs). In patient data, electrical substrate identified using ECGI shows regions of pronounced dispersion of local recovery (i.e., recovery gradients). A computational model of ventricular EP was developed and then used to mimic the recovery gradients and PVCs found in patients. We studied a variety of gradients (6–98 ms/cm) and coupling intervals of the extra stimulus (−70 to +260 ms relative to the end of local recovery), which showed that re-entry can only occur when dispersion of recovery is large (≥76 ms/cm), and the extra stimulus occurs just after local recovery ended (~+40 ms). In conclusion, this computational framework allows to identify the specific conditions under which ECGI-detected substrates and PVCs can lead to re-entry in a personalized approach.
机译:心电图成像(ECGI)可以掩盖使用标准12导联ECG难以检测到的电气异常。但是,要解释ECGI所发现的电模式可能导致的心律失常后果仍然具有挑战性。在这里,我们介绍了一个计算框架,该框架允许对心脏电生理学(EP)进行个性化仿真,以模拟在个体中检测到的电基质,从而研究该基质与过早的心室复合物(PVC)之间的相互作用。在患者数据中,使用ECGI识别的电底物显示了局部恢复的明显分散区域(即恢复梯度)。建立了心室EP的计算模型,然后将其用于模拟患者中发现的恢复梯度和PVC。我们研究了各种梯度(6-98 ms / cm)和额外刺激的耦合间隔(相对于局部恢复结束时为-70到+260 ms),这表明只有在恢复分散时才能重新进入很大(≥76ms / cm),并且额外刺激会在局部恢复结束后(〜+ 40 ms)发生。总而言之,该计算框架可确定ECGI检测到的底物和PVC可以以个性化方式重新进入的特定条件。

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