皮层可塑性的广义神经场理论在初级视觉皮层眼优势柱形成线性阶段的应用。

IF 1.7 4区 工程技术 Q3 COMPUTER SCIENCE, CYBERNETICS
Biological Cybernetics Pub Date : 2022-02-01 Epub Date: 2021-11-13 DOI:10.1007/s00422-021-00901-w
M M Aghili Yajadda, P A Robinson, J A Henderson
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引用次数: 0

摘要

基于生理学的神经场理论(NFT)被扩展到包括皮质可塑性动力学。本文提供了一个说明性的应用程序,该应用程序处理了左眼和右眼视觉刺激与初级视觉皮层(V1)神经元群的连通性的进化,以及大约一维(1D)眼优势柱(odc)形成的初始线性阶段,该阶段设置了它们的横向空间尺度。这将V1的活动、结构和生理联系在一个单一的理论中,这个理论已经解释了一系列其他的大脑活动和连接现象,从而使ODC的形成和许多其他现象相互关联,皮层参数在多个领域受到约束。结果与实际皮层参数的实验ODC宽度一致,并且直接基于对所涉及的神经元群、它们的连接强度和它们支持的神经元活动的统一描述。其他关键结果包括:ODC宽度和最大生长速率参数的简单解析近似,皮质兴奋性和抑郁性增益的约束,V1反应函数特定极点的作用的阐明,以及当输入刺激在两眼之间完全相关时ODC不会形成的事实。这项工作为进一步推广NFT来模拟其他塑性现象提供了基础,从而将它们与NFT所解释的范围多尺度现象联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Generalized neural field theory of cortical plasticity illustrated by an application to the linear phase of ocular dominance column formation in primary visual cortex.

Physiologically based neural field theory (NFT) is extended to encompass cortical plasticity dynamics. An illustrative application is provided which treats the evolution of the connectivity of left- and right-eye visual stimuli to neuronal populations in the primary visual cortex (V1), and the initial, linear phase of formation of approximately one-dimensional (1D) ocular dominance columns (ODCs) that sets their transverse spatial scale. This links V1 activity, structure, and physiology within a single theory that already accounts for a range of other brain activity and connectivity phenomena, thereby enabling ODC formation and many other phenomena to be interrelated and cortical parameters to be constrained across multiple domains. The results accord with experimental ODC widths for realistic cortical parameters and are based directly on a unified description of the neuronal populations involved, their connection strengths, and the neuronal activity they support. Other key results include simple analytic approximations for ODC widths and the parameters of maximum growth rate, constraints on cortical excitatory and inhibitory gains, elucidation of the roles of specific poles of the V1 response function, and the fact that ODCs are not formed when input stimuli are fully correlated between eyes. This work provides a basis for further generalization of NFT to model other plasticity phenomena, thereby linking them to the range multiscale phenomena accounted for by NFT.

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来源期刊
Biological Cybernetics
Biological Cybernetics 工程技术-计算机:控制论
CiteScore
3.50
自引率
5.30%
发文量
38
审稿时长
6-12 weeks
期刊介绍: Biological Cybernetics is an interdisciplinary medium for theoretical and application-oriented aspects of information processing in organisms, including sensory, motor, cognitive, and ecological phenomena. Topics covered include: mathematical modeling of biological systems; computational, theoretical or engineering studies with relevance for understanding biological information processing; and artificial implementation of biological information processing and self-organizing principles. Under the main aspects of performance and function of systems, emphasis is laid on communication between life sciences and technical/theoretical disciplines.
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