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Study the effect of tissue heterogeneity and anisotropy in atrial fibrillation based on a human atrial model

机译:基于人心房模型研究组织异质性和各向异性的疗效。基于人心房模型的心房颤动

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Atrial fibrillation (AF) is the most common cardiac arrhythmias in clinic, it is characterized by multiple waves of excitation coursing through myocardial tissue. AF disrupts the normal sinus rhythm and may arise from ectopic foci. In right atrium, there are many different conduction bundles which have different action potential morphology, and they provide a substrate for reentrant activity during AF. Fibre orientation is important in electric propagation and maintaining AF, however, most previous simulation studies didn't consider the fibre orientation. In this paper we studied the effect of tissue heterogeneity and anisotropy on initiation and maintaining of AF based on a realistic human atrial model with fibre orientation and detailed conduction system. The results showed that tissue heterogeneity and anisotropy are important for AF, and in some cases AF is transient due to the lack of anisotropy. Fiber orientation is very important in sustaining of re-entry waves. This investigation suggests that a detail atrial anatomical model should be necessary for AF simulation.
机译:心房颤动(AF)是诊所中最常见的心脏心律失常,其特征在于通过心肌组织的多波激发源。 AF破坏正常的窦性心律,可能来自异位焦点。在右心房中,存在许多不同的传导束,其具有不同的动作电位形态,并且它们在AF期间提供用于重圈活动的基材。纤维取向在电力传播和维持AF中是重要的,然而,最先前的仿真研究没有考虑纤维取向。本文研究了组织异质性和各向异性对基于纤维取向和详细传导系统的逼真人心房模型的启动与维持的影响。结果表明,组织异质性和各向异性对于AF是重要的,并且在某些情况下,由于缺乏各向异性,AF是短暂的。纤维方向在维持重新进入波方面非常重要。本研究表明,AF模拟需要细节心房解剖模型。

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