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整体心脏电活动和 12 导联心电图生成的简化 3D 模型。

A simplified 3D model of whole heart electrical activity and 12-lead ECG generation.

机构信息

University of Zagreb, Faculty of Electrical Engineering and Computing, 10000 Zagreb, Croatia.

出版信息

Comput Math Methods Med. 2013;2013:134208. doi: 10.1155/2013/134208. Epub 2013 Apr 22.

Abstract

We present a computationally efficient three-dimensional bidomain model of torso-embedded whole heart electrical activity, with spontaneous initiation of activation in the sinoatrial node, incorporating a specialized conduction system with heterogeneous action potential morphologies throughout the heart. The simplified geometry incorporates the whole heart as a volume source, with heart cavities, lungs, and torso as passive volume conductors. We placed four surface electrodes at the limbs of the torso: V R , V L , V F and V GND and six electrodes on the chest to simulate the Einthoven, Goldberger-augmented and precordial leads of a standard 12-lead system. By placing additional seven electrodes at the appropriate torso positions, we were also able to calculate the vectorcardiogram of the Frank lead system. Themodel was able to simulate realistic electrocardiogram (ECG) morphologies for the 12 standard leads, orthogonal X, Y, and Z leads, as well as the vectorcardiogram under normal and pathological heart states. Thus, simplified and easy replicable 3D cardiac bidomain model offers a compromise between computational load and model complexity and can be used as an investigative tool to adjust cell, tissue, and whole heart properties, such as setting ischemic lesions or regions of myocardial infarction, to readily investigate their effects on whole ECG morphology.

摘要

我们提出了一种计算效率高的三维体内心电活动双域模型,该模型在窦房结中自发引发激活,并整合了具有异质动作电位形态的专门传导系统。简化的几何形状将整个心脏作为体积源,将心脏腔、肺和躯干作为被动体积导体。我们在躯干的四肢上放置了四个表面电极:V R 、V L 、V F 和 V GND ,并在胸部放置了六个电极,以模拟标准 12 导联系统的 Einthoven、Goldberger 增强和心前区导联。通过在适当的躯干位置放置另外七个电极,我们还能够计算 Frank 导联系统的向量心电图。该模型能够模拟正常和病理心脏状态下 12 个标准导联、正交 X、Y 和 Z 导联以及向量心电图的真实心电图 (ECG) 形态。因此,简化且易于复制的 3D 心脏双域模型在计算负载和模型复杂性之间提供了折衷方案,可作为一种研究工具,用于调整细胞、组织和整个心脏的特性,例如设置缺血性病变或心肌梗死区域,以方便研究它们对整个 ECG 形态的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e595/3654639/37aca8f5d7ed/CMMM2013-134208.001.jpg

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