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Conduction in the Heart Wall: Helicoidal Fibers Minimize Diffusion Bias

机译:心脏壁传导:螺旋状纤维可最大程度地减少扩散偏差

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摘要

The mammalian heart must function as an efficient pump while simultaneously conducting electrical signals to drive the contraction process. In the ventricles, electrical activation begins at the insertion points of the Purkinje network in the endocardium. How does the diffusion component of the subsequent excitation wave propagate from the endocardium in a healthy heart wall without creating directional biases? We show that this is a consequence of the particular geometric organization of myocytes in the heart wall. Using a generalized helicoid to model fiber orientation, we treat the myocardium as a curved space via Riemannian geometry, and then use stochastic calculus to model local signal diffusion. Our analysis shows that the helicoidal arrangement of myocytes minimizes the directional biases that could lead to aberrant propagation, thereby explaining how electrophysiological principles are consistent with local measurements of cardiac fiber geometry. We discuss our results in the context of the need to balance electrical and mechanical requirements for heart function.
机译:哺乳动物的心脏必须起到有效的泵的作用,同时传导电信号以驱动收缩过程。在心室中,电激活始于心内膜Purkinje网络的插入点。后续激发波的扩散成分如何在健康的心脏壁中从心内膜传播而不会产生方向偏差?我们表明这是心肌壁中心肌细胞特定几何结构的结果。使用广义螺旋线对纤维取向进行建模,我们通过黎曼几何将心肌视为弯曲空间,然后使用随机演算对局部信号扩散进行建模。我们的分析表明,心肌细胞的螺旋状排列可最大程度地减少可能导致异常传播的方向偏差,从而解释电生理原理与心脏纤维几何形状的局部测量结果如何一致。我们在平衡心脏功能的电气和机械要求的背景下讨论了我们的结果。

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