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Effects of Fibre Orientation on Electrocardiographic and Mechanical Functions in a Computational Human Biventricular Model

机译:纤维取向对计算人体生物模型中心电图和机械功能的影响

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The helix orientated fibres in the ventricular wall modulate the cardiac electromechanical functions. Experimental data of the helix angle through the ventricular wall have been reported from histological and image-based methods, exhibiting large variability. It is, however, still unclear how this variability influences electrocardiographic characteristics and mechanical functions of human hearts, as characterized through computer simulations. This paper investigates the effects of the range and transmural gradient of the helix angle on electrocardiogram, pressure-volume loops, circumferential contraction, wall thickening, longitudinal shortening and twist, by using state-of-the-art computational human biventricular modelling and simulation. Five models of the helix angle are considered based on in vivo diffusion tensor magnetic resonance imaging data. We found that both electrocardiographic and mechanical biomarkers are influenced by these two factors, through the mechanism of regulating the proportion of circumferentially-orientated fibres. With the increase in this proportion, the T-wave amplitude decreases, circumferential contraction and twist increase while longitudinal shortening decreases.
机译:螺旋定向纤维在心室壁中调节心脏机电功能。通过组织学和基于图像的方法报道了通过心室壁的螺旋角的实验数据,表现出大的变化。然而,仍然尚不清楚这种可变性如何影响人体心灵的心电图特性和机械功能,如通过计算机模拟所征用。本文研究了螺旋角度范围和透射梯度对心电图,压力量环,周向收缩,壁增厚,纵向缩短和扭曲的影响,通过使用最先进的计算人的生物铭刻和模拟。基于体内扩散张量磁共振成像数据,考虑五种螺旋角的模型。我们发现,通过调节圆周取向纤维的比例的机制,既有心电图和机械生物标志物都受到这两个因素的影响。随着该比例的增加,T波幅度降低,周向收缩和扭曲增加,而纵向缩短降低。

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