Learning-Stage-Dependent Plasticity of Temporal Coherence in the Auditory Cortex of Rats

被引:0
作者
Ryo Yokota
Kazuyuki Aihara
Ryohei Kanzaki
Hirokazu Takahashi
机构
[1] The University of Tokyo,Research Center for Advanced Science and Technology
[2] The University of Tokyo,Institute of Industrial Science
[3] The University of Tokyo,FIRST, Aihara Innovative Mathematical Modelling Project, Japan Science and Technology Agency
[4] Japan Science and Technology Agency,Precursory Research for Embryonic Science and Technology
来源
Brain Topography | 2015年 / 28卷
关键词
Auditory cortex; First spike latency; Local field potentials; Temporal coherence; Learning; Plasticity;
D O I
暂无
中图分类号
学科分类号
摘要
Temporal coherence among neural populations may contribute importantly to signal encoding, specifically by providing an optimal tradeoff between encoding reliability and efficiency. Here, we considered the possibility that learning modulates the temporal coherence among neural populations in association with well-characterized map plasticity. We previously demonstrated that, in appetitive operant conditioning tasks, the tone-responsive area globally expanded during the early stage of learning, but shrank during the late stage. The present study further showed that phase locking of the first spike to band-specific oscillations of local field potentials (LFPs) significantly increased during the early stage of learning but decreased during the late stage, suggesting that neurons in A1 were more synchronously activated during early learning, whereas they were more asynchronously activated once learning was completed. Furthermore, LFP amplitudes increased during early learning but decreased during later learning. These results suggest that, compared to naïve encoding, early-stage encoding is more reliable but energy-consumptive, whereas late-stage encoding is more energetically efficient. Such a learning-stage-dependent encoding strategy may underlie learning-induced, non-monotonic map plasticity. Accumulating evidence indicates that the cholinergic system is likely to be a shared neural substrate of the processes for perceptual learning and attention, both of which modulate neural encoding in an adaptive manner. Thus, a better understanding of the links between map plasticity and modulation of temporal coherence will likely lead to a more integrated view of learning and attention.
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页码:401 / 410
页数:9
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