Peets Tanel, Tamm Kert, Engelbrecht Jüri
Department of Cybernetics, School of Science, Tallinn University of Technology, Tallinn, Estonia.
Estonian Academy of Sciences, Tallinn, Estonia.
Front Cell Neurosci. 2023 Jul 27;17:1222785. doi: 10.3389/fncel.2023.1222785. eCollection 2023.
The long history of studying the propagation of an action potential has revealed that an electrical signal is accompanied by mechanical and thermal effects. All these effects together generate an ensemble of waves. The consistent models of such a complex phenomenon can be derived by using properly the fundamental physical principles. In this paper, attention is paid to the analysis of concepts of continuum physics that constitute a basis for deriving the mathematical models which describe the emergence and propagation of a wave ensemble in an axon. Such studies are interdisciplinary and based on biology, physics, mathematics, and chemistry. The governing equations for the action potential together with mechanical and thermal effects are derived starting from basics: Maxwell equations, conservation of momentum, Fourier's law, etc., but modified following experimental studies in electrophysiology. Several ideas from continuum physics like external forces and internal variables can also be used in deriving the corresponding models. Some mathematical concepts used in modeling are also briefly described. A brief overview of several mathematical models is presented that allows us to analyze the present ideas of modeling. Most mathematical models deal with the propagation of signals in a healthy axon. Further analysis is needed for better modeling the pathological situations and the explanation of the influence of the structural details like the myelin sheath or the cytoskeleton in the axoplasm. The future possible trends in improving the models are envisaged.
对动作电位传播的长期研究表明,电信号伴随着机械和热效应。所有这些效应共同产生了一系列波。通过恰当地运用基本物理原理,可以推导出这种复杂现象的一致模型。在本文中,重点关注对连续介质物理学概念的分析,这些概念构成了推导描述轴突中波系出现和传播的数学模型的基础。此类研究具有跨学科性质,以生物学、物理学、数学和化学为基础。从基本原理出发,如麦克斯韦方程组、动量守恒、傅里叶定律等,推导出包含机械和热效应的动作电位控制方程,但根据电生理学的实验研究进行了修正。连续介质物理学中的一些概念,如外力和内变量,也可用于推导相应模型。还简要描述了建模中使用的一些数学概念。给出了几个数学模型的简要概述,使我们能够分析当前的建模思路。大多数数学模型处理信号在健康轴突中的传播。为了更好地对病理情况进行建模以及解释髓鞘或轴浆中细胞骨架等结构细节的影响,还需要进一步分析。设想了未来改进模型的可能趋势。