神经冲动有三个相互依存的功能:沟通、调节和计算

IF 1.6 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
W. Winlow, A. S. Johnson
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引用次数: 3

摘要

理解动作电位的本质是我们理解神经系统功能的基础。在这里,我们考虑了它们的进化,并描述了它们在神经系统中的通信、调制和计算功能。1952年,霍奇金和赫胥利首次描述了鱿鱼巨轴突动作电位的离子机制,他们的发现形成了我们对生理动作电位如何起作用的正统观点。然而,目前已有大量证据表明,动作电位在细胞膜中伴随着一个同步耦合的孤子压力脉冲,即动作电位脉冲(APPulse)。在这里,我们探讨了已知与动作电位相关的孤子和离子机制之间的相互作用。动作电位的计算模型通常将其描述为二元事件,但我们认为它是量子三元事件,称为计算动作电位(CAP),其时间固定点为阈值,而不是其他模型中具有相当可塑性的动作电位峰值。CAP伴随着APPulse和生理动作电位。因此,我们得出结论,神经冲动似乎是三个不可分割,相互依存,并发状态的集合:生理动作电位,APPulse和CAP。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nerve Impulses Have Three Interdependent Functions: Communication, Modulation, and Computation
Comprehending the nature of action potentials is fundamental to our understanding of the functioning of nervous systems in general. Here we consider their evolution and describe their functions of communication, modulation and computation within nervous systems. The ionic mechanisms underlying action potentials in the squid giant axon were first described by Hodgkin and Huxley in 1952 and their findings have formed our orthodox view of how the physiological action potential functions. However, substantial evidence has now accumulated to show that the action potential is accompanied by a synchronized coupled soliton pressure pulse in the cell membrane, the action potential pulse (APPulse). Here we explore the interactions between the soliton and the ionic mechanisms known to be associated with the action potential. Computational models of the action potential usually describe it as a binary event, but we suggest that it is quantum ternary event known as the computational action potential (CAP), whose temporal fixed point is threshold, rather than the rather plastic action potential peak used in other models. The CAP accompanies the APPulse and the Physiological action potential. Therefore, we conclude that nerve impulses appear to be an ensemble of three inseparable, interdependent, concurrent states: the physiological action potential, the APPulse and the CAP.
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来源期刊
Bioelectricity
Bioelectricity Multiple-
CiteScore
3.40
自引率
4.30%
发文量
33
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