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首页> 外文期刊>Journal of cardiovascular electrophysiology >Study of unipolar electrogram morphology in a computer model of atrial fibrillation.
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Study of unipolar electrogram morphology in a computer model of atrial fibrillation.

机译:在房颤计算机模型中研究单极电描记图形态。

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INTRODUCTION: Electrograms exhibit a wide variety of morphologies during atrial fibrillation (AF). The basis of these time courses, however, is not completely understood. In this study, data from computer models were studied to relate features of the signals to the underlying dynamics and tissue substrate. METHODS AND RESULTS: A computer model of entire human atria with a gross fiber architecture based on histology and membrane kinetics based on the Courtemanche et al. atrial model was developed to simulate paced activation and simulated AF. Unipolar electrograms were computed using a current source approximation at 256 sites in right atrium, to simulate a mapping array. The results show the following: (1) In a homogeneous and isotropic tissue, the presence of highly asymmetric electrograms is rare (<2%), although there is a marked variability in amplitude and symmetry. (2) The introduction of anisotropy increases this variability in symmetry and amplitude of the, electrograms especially for propagation across fibers. The percentage of highly asymmetric electrograms increases to 12% to 15% for anisotropy ratios greater than 3:1. (3) Multiphasic and fractionated electrograms are rarely seen in the model with uniform properties but are more common (15%-17%) in a model including regions with abrupt changes in conductivity. Beat-to-beat variations in the occurrence of multiphasic signals are possible with fixed anatomic heterogeneity, due to beat-to-beat variations in the direction of the wavefront relative to the heterogeneity. CONCLUSION: Analysis of the amplitude and symmetry of unipolar atrial electrograms can provide information about the electrophysiologic substrate maintaining AF.
机译:简介:心电图在心房颤动(AF)期间表现出多种形态。但是,这些时间课程的基础尚未完全理解。在这项研究中,对来自计算机模型的数据进行了研究,以将信号的特征与潜在的动力学和组织基质相关联。方法和结果:基于Courtemanche等人的基于组织学和膜动力学的具有总体纤维结构的整个人类心房的计算机模型。开发了心房模型以模拟起搏激活和模拟房颤。使用在右心房中256个位置的电流源近似计算单极电描记图,以模拟映射阵列。结果表明:(1)在均质各向同性的组织中,高度不对称的电描记图的出现很少(<2%),尽管幅度和对称性存在明显的变化。 (2)各向异性的引入增加了这种电图的对称性和幅度的可变性,特别是在纤维间传播时。对于各向异性比率大于3:1的高度不对称电描记图的百分比增加到12%至15%。 (3)在具有均匀特性的模型中很少见到多相电图和分数电图,但在包含电导率突然变化的区域的模型中,多相电图和分数电图更为常见(15%-17%)。由于在波前方向上相对于异质性的拍频变化,具有固定的解剖学异质性的多相信号发生中的拍频变化是可能的。结论:单极心电图的幅度和对称性分析可提供有关维持房颤的电生理底物的信息。

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