A Physical Perspective to the Inductive Function of Myelin—A Missing Piece of Neuroscience

信号(编程语言) 神经科学 磁刺激 物理 电感 髓鞘 电磁线圈 神经系统 计算机科学 生物 电压 中枢神经系统 刺激 量子力学 程序设计语言
作者
Hao Wang,Jiahui Wang,Guangyi Cai,Yonghong Liu,Yansong Qu,Tianzhun Wu
出处
期刊:Frontiers in Neural Circuits [Frontiers Media]
卷期号:14: 562005-562005 被引量:25
标识
DOI:10.3389/fncir.2020.562005
摘要

Starting from the inductance in neurons, two physical origins are discussed, which are the coil inductance of myelin and the piezoelectric effect of the cell membrane. The direct evidence of the coil inductance of myelin is the opposite spiraling phenomenon between adjacent myelin sheaths confirmed by previous studies. As for the piezoelectric effect of the cell membrane, which has been well-known in physics, the direct evidence is the mechanical wave accompany with action potential. Therefore, a more complete physical nature of neural signals is provided. In conventional neuroscience, the neural signal is a pure electrical signal. In our new theory, the neural signal is an energy pulse containing electrical, magnetic, and mechanical components. Such a physical understanding of the neural signal and neural systems significantly improve the knowledge of the neurons. On the one hand, we achieve a corrected neural circuit of an inductor-capacitor-capacitor (LCC) form, whose frequency response and electrical characteristics have been validated by previous studies and the modeling fitting of artifacts in our experiments. On the other hand, a number of phenomena observed in neural experiments are explained. In particular, they are the mechanism of magnetic nerve stimulations and ultrasound nerve stimulations, the MRI image contrast issue and Anode Break Excitation. At last, the biological function of myelin is summarized. It is to provide inductance in the process of neural signal, which can enhance the signal speed in peripheral nervous systems and provide frequency modulation function in central nervous systems.
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