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Simulating the Effects of Atrial Fibrillation Induced Electrical Remodeling: A Comprehensive Simulation Study

机译:模拟心房颤动诱导电气重塑的影响:全面的仿真研究

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Mechanisms underlying atrial fibrillation (AF) are poorly understood. In this study, we computationally evaluated the functional roles of AF induced electrical remodeling (AFER) on atrial electrical excitations. Experimental data of AFER on human atrial myocytes were incorporated into a biophysically detailed model of human atrial cells to simulate the effects of AFER at cellular and tissue levels. Our results show that AFER dramatically abbreviated atrial action potential duration (APD{sub}90) and effective refractory period that were quantitatively consistent with experimental data. A typical feature of loss in rate dependent accommodation of APD{sub}90 was observed. AFER slowed down atrial conduction velocity, but facilitated atrial conduction at high excitation rates. AFER increased tissue's spatial vulnerability for initiation and maintenance of AF remarkably. The overall susceptibility of human atrium to arrhythmia was increased. Most importantly AFER increased the stability of reentrant waves in 2D and 3D models prolonging their lifespan. While reentrant excitation waves self-terminated under Control conditions, the same became persistent or degenerated into multiple wavelets leading to spatio-temporal chaos under AFER conditions with accelerated re-entrant excitation rates. There was an increase in dominant frequency. In conclusion, our simulations substantiated a link between AFER and persistence of AF, providing mechanistic insights towards better understanding of "AF begets AF".
机译:潜在的心房颤动(AF)的机制尚不清楚。在这项研究中,我们计算地评估了AF感应电气重塑(AFER)对心房电激励的功能作用。将人心房肌细胞的Aber的实验数据掺入了人心房细胞的生物用具细节模型中,以模拟具有细胞和组织水平的Afer的影响。我们的结果表明,通过实验数据定量符合实验数据,发电机显着地缩短了缩写的心房动作潜在持续时间(APD {Sub} 90)和有效的耐火期。观察到APD {Sub} 90的速率依赖性容纳损失损失的典型特征。 Afer减缓了心房传导速度,但在高励磁速率下促进了心房传导。通过显着提高组织的空间脆弱性,可显着启动和维护AF。人类庭对心律失常的总体易感性增加。最重要的是推动了延长其寿命的2D和3D模型中重圈波的稳定性。虽然在控制条件下自终止的重圈激发波,但是在具有加速的再参与者激励率下的电气条件下,相同的持续或退化为导致时空混沌的多个小波。显性频率有所增加。总之,我们的模拟证实了AF的推动和持久性之间的联系,为更好地理解“AF投入AF”提供机械洞察力。

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