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The roles of mid-myocardial and epicardial cells in T-wave alternans development: a simulation study

机译:心肌中膜和心外膜细胞在T波交替神经发育中的作用:模拟研究

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The occurrence of T-wave alternans in electrocardiographic signals was recently linked to susceptibility to ventricular arrhythmias and sudden cardiac death. Thus, by detecting and comprehending the origins of T-wave alternans, it might be possible to prevent such events. Here, we simulated T-wave alternans in a computer-generated human heart model by modulating the action potential duration and amplitude during the first part of the repolarization phase. We hypothesized that changes in the intracardiac alternans patterns of action potential properties would differentially influence T-wave alternans measurements at the body surface. Specifically, changes were simulated globally in the whole left and right ventricles to simulate concordant T-wave alternans, and locally in selected regions to simulate discordant and regional discordant, hereinafter referred to as “regional”, T-wave alternans. Body surface potential maps and 12-lead electrocardiographic signals were then computed. In depth discrimination, the influence of epicardial layers on T-wave alternans development was significantly higher than that of mid-myocardial cells. Meanwhile, spatial discrimination revealed that discordant and regional action potential property changes had a higher influence on T-wave alternans amplitude than concordant changes. Notably, varying T-wave alternans sources yielded distinct body surface potential map patterns for T-wave alternans amplitude, which can be used for location of regions within hearts exhibiting impaired repolarization. The highest ability for T-wave alternans detection was achieved in lead V1. Ultimately, we proposed new parameters Vector Magnitude Alternans and Vector Angle Alternans, with higher ability for T-wave alternans detection when using multi-lead electrocardiographic signals processing than for single leads. Finally, QT alternans was found to be associated with the process of T-wave alternans generation. The distributions of the body surface T-wave alternans amplitude have been shown to have unique patterns depending on the type of alternans (concordant, discordant or regional) and the location of the disturbance in the heart. The influence of epicardial cells on T-wave alternans development is significantly higher than that of mid-myocardial cells, among which the sub-endocardial layer exerted the highest influence. QT interval alternans is identified as a phenomenon that correlate with T-wave alternans.
机译:最近,心电图信号中T波交替蛋白的出现与室性心律失常的敏感性和心脏猝死有关。因此,通过检测和理解T波交变体的起源,有可能防止此类事件的发生。在这里,我们通过在复极化阶段的第一部分中调节动作电位的持续时间和幅度,在计算机生成的人类心脏模型中模拟了T波交替体。我们假设心内交替作用方式的变化可能会影响体表T波交替反应的测量。具体而言,在整个左心室和右心室中全局模拟变化,以模拟一致的T波交替,并在选定区域中局部模拟不协调和区域性不一致,以下称为“区域性” T波交替。然后计算体表电位图和12导联心电图信号。在深度辨别中,心外膜层对T波交替神经发育的影响显着高于中层心肌细胞。同时,空间判别表明,不协调和区域动作电位特性变化对T波交变振幅的影响大于协调变化。值得注意的是,变化的T波交替源产生了针对T波交替幅度的不同的体表电位图模式,可用于对心脏内表现出复极化受损的区域进行定位。在V1导线中实现了最高的T波交替质检测能力。最终,我们提出了新的参数Vector Magnitude Alternans和Vector Angle Alternans,这些参数在使用多导联心电图信号处理时具有比单导联更高的T波交联检测能力。最后,发现QT交替蛋白与T波交替蛋白的生成过程有关。体表T波交变振幅的分布已显示出具有独特的模式,具体取决于交变的类型(一致,不一致或区域性)以及心脏干扰的位置。心外膜细胞对T波交替神经发育的影响显着高于中层心肌细胞,其中心内膜下层的影响最大。 QT间隔交替蛋白被鉴定为与T波交替蛋白相关的现象。

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