Institute of Physiology and Pathophysiology, Medical Biophysics, Heidelberg University, Heidelberg, Germany.
Front Neural Circuits. 2021 Sep 9;15:730211. doi: 10.3389/fncir.2021.730211. eCollection 2021.
Large portions of the thalamus receive strong driving input from cortical layer 5 (L5) neurons but the role of this important pathway in cortical and thalamic computations is not well understood. L5-recipient "higher-order" thalamic regions participate in cortico-thalamo-cortical (CTC) circuits that are increasingly recognized to be (1) anatomically and functionally distinct from better-studied "first-order" CTC networks, and (2) integral to cortical activity related to learning and perception. Additionally, studies are beginning to elucidate the clinical relevance of these networks, as dysfunction across these pathways have been implicated in several pathological states. In this review, we highlight recent advances in understanding L5 CTC networks across sensory modalities and brain regions, particularly studies leveraging cell-type-specific tools that allow precise experimental access to L5 CTC circuits. We aim to provide a focused and accessible summary of the anatomical, physiological, and computational properties of L5-originating CTC networks, and outline their underappreciated contribution in pathology. We particularly seek to connect single-neuron and synaptic properties to network (dys)function and emerging theories of cortical computation, and highlight information processing in L5 CTC networks as a promising focus for computational studies.
大脑皮层第 5 层(L5)神经元向丘脑的大部分区域输入强烈的驱动信号,但这条重要通路在皮质和丘脑计算中的作用尚不清楚。L5 接收的“高级”丘脑区域参与皮质-丘脑-皮质(CTC)回路,这些回路越来越被认为与学习和感知相关的皮质活动有关:(1) 在解剖和功能上与研究更为充分的“一级”CTC 网络不同;(2) 是这些网络的重要组成部分。此外,研究开始阐明这些网络的临床相关性,因为这些途径的功能障碍与几种病理状态有关。在这篇综述中,我们强调了在跨感觉模态和脑区理解 L5CTC 网络方面的最新进展,特别是利用细胞类型特异性工具的研究,这些工具允许对 L5CTC 回路进行精确的实验研究。我们旨在提供一个关于 L5 起源的 CTC 网络的解剖学、生理学和计算特性的重点和易于理解的总结,并概述它们在病理学中的未被充分认识的贡献。我们特别试图将单个神经元和突触特性与网络(功能)障碍和皮质计算的新兴理论联系起来,并强调 L5CTC 网络中的信息处理是计算研究的一个很有前途的焦点。