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Regulation of circuit organization and function through inhibitory synaptic plasticity

机译:通过抑制突触可塑性调节回路组织和功能

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摘要

Diverse inhibitory neurons in the mammalian brain shape circuit connectivity and dynamics through mechanisms of synaptic plasticity. Inhibitory plasticity can establish excitation/inhibition (E/I) balance, control neuronal firing, and affect local calcium concentration, hence regulating neuronal activity at the network, single neuron, and dendritic level. Computational models can synthesize multiple experimental results and provide insight into how inhibitory plasticity controls circuit dynamics and sculpts connectivity by identifying phenomenological learning rules amenable to mathematical analysis. We highlight recent studies on the role of inhibitory plasticity in modulating excitatory plasticity, forming structured networks underlying memory formation and recall, and implementing adaptive phenomena and novelty detection. We conclude with experimental and modeling progress on the role of interneuron-specific plasticity in circuit computation and context-dependent learning.
机译:哺乳动物大脑中的多种抑制性神经元通过突触可塑性机制形成回路连接和动力学。抑制可塑性可以建立兴奋/抑制 (E/I) 平衡,控制神经元放电,并影响局部钙浓度,从而在网络、单个神经元和树突水平上调节神经元活动。计算模型可以综合多个实验结果,并通过识别适合数学分析的现象学学习规则来深入了解抑制性可塑性如何控制电路动力学和塑造连接性。我们重点介绍了抑制性可塑性在调节兴奋性可塑性、形成记忆形成和回忆的结构化网络以及实现适应性现象和新颖性检测方面的作用的最新研究。最后,我们总结了中间神经元特异性可塑性在电路计算和上下文相关学习中的作用的实验和建模进展。

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