伽马振荡促进兴奋抑制平衡神经回路的有效学习

IF 3.1 4区 医学 Q2 Medicine
Neural Plasticity Pub Date : 2021-01-19 eCollection Date: 2021-01-01 DOI:10.1155/2021/6668175
Kwan Tung Li, Junhao Liang, Changsong Zhou
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引用次数: 0

摘要

神经回路中的γ振荡被认为与大脑的有效学习有关,但其潜在机制尚不清楚。本文旨在研究尖峰计时依赖可塑性(STDP)这一典型的学习机制如何与神经回路中的γ振荡相互作用,形成网络动力学特性和网络结构。我们研究了一个具有三重 STDP、异突触可塑性和递质诱导可塑性的兴奋-抑制(E-I)整合-发射神经元网络。我们的研究结果表明,在不同的同步水平下,可塑性的表现各不相同。我们发现伽马振荡有利于受刺激神经元之间的突触电位,因为它形成了一种特殊的网络结构,即兴奋性输入突触强度总和与抑制性输入突触强度总和相关。该电路能平均维持E-I平衡输入,而在学习诱导的振荡中,这种平衡会在时间上被打破。我们的研究揭示了伽马振荡对生物神经回路学习的潜在机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gamma Oscillations Facilitate Effective Learning in Excitatory-Inhibitory Balanced Neural Circuits.

Gamma Oscillations Facilitate Effective Learning in Excitatory-Inhibitory Balanced Neural Circuits.

Gamma Oscillations Facilitate Effective Learning in Excitatory-Inhibitory Balanced Neural Circuits.

Gamma Oscillations Facilitate Effective Learning in Excitatory-Inhibitory Balanced Neural Circuits.

Gamma oscillation in neural circuits is believed to associate with effective learning in the brain, while the underlying mechanism is unclear. This paper aims to study how spike-timing-dependent plasticity (STDP), a typical mechanism of learning, with its interaction with gamma oscillation in neural circuits, shapes the network dynamics properties and the network structure formation. We study an excitatory-inhibitory (E-I) integrate-and-fire neuronal network with triplet STDP, heterosynaptic plasticity, and a transmitter-induced plasticity. Our results show that the performance of plasticity is diverse in different synchronization levels. We find that gamma oscillation is beneficial to synaptic potentiation among stimulated neurons by forming a special network structure where the sum of excitatory input synaptic strength is correlated with the sum of inhibitory input synaptic strength. The circuit can maintain E-I balanced input on average, whereas the balance is temporal broken during the learning-induced oscillations. Our study reveals a potential mechanism about the benefits of gamma oscillation on learning in biological neural circuits.

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来源期刊
Neural Plasticity
Neural Plasticity Neuroscience-Neurology
CiteScore
5.70
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: Neural Plasticity is an international, interdisciplinary journal dedicated to the publication of articles related to all aspects of neural plasticity, with special emphasis on its functional significance as reflected in behavior and in psychopathology. Neural Plasticity publishes research and review articles from the entire range of relevant disciplines, including basic neuroscience, behavioral neuroscience, cognitive neuroscience, biological psychology, and biological psychiatry.
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