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用增强的单域方法表示心脏双域浴负荷效应:在复杂心室模型中的应用。

Representing cardiac bidomain bath-loading effects by an augmented monodomain approach: application to complex ventricular models.

机构信息

Computing Laboratory, University of Oxford, Oxford OX1 3QD, UK.

出版信息

IEEE Trans Biomed Eng. 2011 Apr;58(4):1066-75. doi: 10.1109/TBME.2010.2096425. Epub 2011 Jan 31.

Abstract

Although the cardiac bidomain model has been widely used in the simulation of electrical activation, its relatively computationally expensive nature means that monodomain approaches are generally required for long-duration simulations (for example, investigations of arrhythmia mechanisms). However, the presence of a conducting bath surrounding the tissue is known to induce wavefront curvature (surface leading bulk), a phenomena absent in standard monodomain approaches. Here, we investigate the biophysical origin of the bidomain bath-loading induced wavefront curvature and present a novel augmented monodomain-equivalent bidomain approach faithfully replicating all aspects of bidomain wavefront morphology and conduction velocity, but with a fraction of the computational cost. Bath-loading effects are shown to be highly dependent upon specific conductivity parameters, but less dependent upon the thickness or conductivity of the surrounding bath, with even relatively thin surrounding fluid layers (~ 0.1 mm) producing significant wavefront curvature in bidomain simulations. We demonstrate that our augmented monodomain approach can be easily adapted for different conductivity sets and applied to anatomically complex models, thus facilitating fast and accurate simulation of cardiac wavefront dynamics during long-duration simulations, further aiding the faithful comparison of simulations with experiments.

摘要

尽管心脏双域模型已被广泛用于电激活的模拟,但它相对昂贵的计算成本意味着在长时间模拟(例如心律失常机制的研究)中通常需要单域方法。然而,众所周知,组织周围的传导浴会引起波前弯曲(表面领先于体部),这是标准单域方法所没有的现象。在这里,我们研究了双域浴负载引起波前弯曲的生物物理起源,并提出了一种新的增强型单域等效双域方法,忠实地复制了双域波前形态和传导速度的所有方面,但计算成本仅为其一小部分。浴负载效应高度依赖于特定的电导率参数,但对周围浴的厚度或电导率的依赖性较小,即使是相对较薄的周围流体层(约 0.1 毫米)也会在双域模拟中产生明显的波前弯曲。我们证明,我们的增强型单域方法可以很容易地适应不同的电导率集,并应用于解剖复杂的模型,从而在长时间模拟中实现快速准确的心脏波前动力学模拟,进一步帮助对模拟与实验的忠实比较。

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