论文标题

使用Poisson-Nernst-planck处理和传导速度估计神经元中盐酸传导的时空模型

Spatio-temporal modeling of saltatory conduction in neurons using Poisson-Nernst-Planck treatment and estimation of conduction velocity

论文作者

Gulati, Rahul, Rudraraju, Shiva

论文摘要

沿轴突和跨树枝状的动作电位传播是在大脑和中枢神经系统的其余部分中观察到的电活动的基础。长期以来,这种动作潜在活性的理论和数值建模一直是电化学神经元建模的关键重点领域。具体而言,考虑到沿髓鞘轴突沿兰维尔的节点的存在,动作电位传播的单钟模型很受欢迎。在这些模型的基础上,考虑到髓鞘鞘下方的次级电导传导途径,已经提出了双钟模型。这种基于电缆理论的治疗缺乏对神经元电化学的时空演化的表示,具有固有的局限性。相比之下,基于泊松的尼斯特省(PNP)的电 - 扩散框架是基本时空离子浓度动力学的基础,并且是一种更全面的治疗方法。在这项工作中,展示了PNP模型的高保真实现。该模型显示出类似于基于电缆理论的电气模型的结果,此外,捕获了基本离子转运的丰富时空演化。这项工作的新颖是将PNP模型扩展到具有多个ranvier节点的轴突几何形状,并且具有髓鞘和髓鞘带有髓鞘鞘和轴周围空间的髓磷脂,PNP和PNP的多个电 - 脱水模型-PNP-PNP。此外,我们将此时空模型应用于大鼠轴突中的数值估计传导速度。具体而言,研究了由于髓鞘的存在和轴周围空间而引起的盐传导。

Action potential propagation along the axons and across the dendrites is the foundation of the electrical activity observed in the brain and the rest of the central nervous system. Theoretical and numerical modeling of this action potential activity has long been a key focus area of electro-chemical neuronal modeling. Specifically, considering the presence of nodes of Ranvier along the myelinated axon, single-cable models of the propagation of action potential have been popular. Building on these models, and considering a secondary electrical conduction pathway below the myelin sheath, the double-cable model has been proposed. Such cable theory based treatments have inherent limitations in their lack of a representation of the spatio-temporal evolution of the neuronal electro-chemistry. In contrast, a Poisson-Nernst-Planck (PNP) based electro-diffusive framework accounts for the underlying spatio-temporal ionic concentration dynamics and is a more comprehensive treatment. In this work, a high-fidelity implementation of the PNP model is demonstrated. This model is shown to produce results similar to the cable theory based electrical models, and in addition, the rich spatio-temporal evolution of the underlying ionic transport is captured. Novel to this work is the extension of PNP model to axonal geometries with multiple nodes of Ranvier and multiple variants of the electro-diffusive model - PNP without myelin, PNP with myelin, and PNP with the myelin sheath and peri-axonal space. Further, we apply this spatio-temporal model to numerically estimate conduction velocity in a rat axon. Specifically, saltatory conduction due to the presence of myelin sheath and the peri-axonal space is investigated.

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