Local thalamic interneurons drive spindle termination and enable sleep-dependent learning.

Jane Simko, Tamina Keira Ramirez, Caryn Martin, Sally Leung, Eleni A Sung, Christopher D Makinson
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Abstract

The thalamus is central to fundamental brain functions including sensation, attention, and sleep through the precise generation and regulation of neuronal ensemble oscillatory activity. Sensory thalamic circuits are considered feedforward structures, lacking lateral connectivity, while recurrence in the network is mediated by interactions with inhibitory neurons of the thalamic reticular nucleus. Here, we define previously uncharacterized functional roles of local thalamic interneurons, a component of the sensory thalamus whose function has remained unexplored. We demonstrate that local interneuron activation induces rebound oscillations in thalamocortical relay neurons ex vivo and neocortical spindles in vivo , while their inhibition increases spindle occurrence, overall spindle duration and impairs sensory learning. Our findings reveal that local thalamic interneurons have shared and complementary functions to those of thalamic reticular neurons and are required for proper spindle formation and sleep-dependent learning. Together, this work establishes an important neural substrate of thalamocortical circuit function.

局部丘脑中间神经元驱动纺锤体终止并使睡眠依赖学习成为可能。
丘脑通过精确地产生和调节神经元整体振荡活动,对包括感觉、注意力和睡眠在内的基本大脑功能起着核心作用。感觉丘脑回路被认为是前馈结构,缺乏横向连接,而网络中的复发是通过与丘脑网状核的抑制性神经元的相互作用介导的。在这里,我们定义了以前未表征的局部丘脑中间神经元的功能作用,这是感觉丘脑的一个组成部分,其功能仍未被探索。我们证明,局部神经元间激活诱导丘脑皮层中继神经元在体外和体内的新皮层纺锤体的反弹振荡,而它们的抑制增加纺锤体的发生,总体纺锤体持续时间和损害感觉学习。我们的研究结果表明,局部丘脑中间神经元与丘脑网状神经元具有共享和互补的功能,并且是正确的纺锤体形成和睡眠依赖学习所必需的。总之,这项工作建立了一个重要的丘脑皮层回路功能的神经基质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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