Gamma Oscillations Facilitate Effective Learning in Excitatory-Inhibitory Balanced Neural Circuits
Author(s) -
Kwan Tung LI,
Junhao Liang,
Changsong Zhou
Publication year - 2021
Publication title -
neural plasticity
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.288
H-Index - 68
eISSN - 2090-5904
pISSN - 1687-5443
DOI - 10.1155/2021/6668175
Subject(s) - excitatory postsynaptic potential , neuroscience , inhibitory postsynaptic potential , biological neural network , synaptic plasticity , long term potentiation , oscillation (cell signaling) , synchronization (alternating current) , mechanism (biology) , spike timing dependent plasticity , nerve net , computer science , artificial neural network , neuroplasticity , physics , biology , artificial intelligence , receptor , telecommunications , biochemistry , channel (broadcasting) , genetics , quantum mechanics
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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