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一种用于选择性皮质-皮质通信的分层组织。

A Laminar Organization for Selective Cortico-Cortical Communication.

作者信息

D'Souza Rinaldo D, Burkhalter Andreas

机构信息

Department of Neuroscience, Washington University School of MedicineSt. Louis, MO, United States.

出版信息

Front Neuroanat. 2017 Aug 22;11:71. doi: 10.3389/fnana.2017.00071. eCollection 2017.

Abstract

The neocortex is central to mammalian cognitive ability, playing critical roles in sensory perception, motor skills and executive function. This thin, layered structure comprises distinct, functionally specialized areas that communicate with each other through the axons of pyramidal neurons. For the hundreds of such cortico-cortical pathways to underlie diverse functions, their cellular and synaptic architectures must differ so that they result in distinct computations at the target projection neurons. In what ways do these pathways differ? By originating and terminating in different laminae, and by selectively targeting specific populations of excitatory and inhibitory neurons, these "interareal" pathways can differentially control the timing and strength of synaptic inputs onto individual neurons, resulting in layer-specific computations. Due to the rapid development in transgenic techniques, the mouse has emerged as a powerful mammalian model for understanding the rules by which cortical circuits organize and function. Here we review our understanding of how cortical lamination constrains long-range communication in the mammalian brain, with an emphasis on the mouse visual cortical network. We discuss the laminar architecture underlying interareal communication, the role of neocortical layers in organizing the balance of excitatory and inhibitory actions, and highlight the structure and function of layer 1 in mouse visual cortex.

摘要

新皮层是哺乳动物认知能力的核心,在感觉知觉、运动技能和执行功能中发挥着关键作用。这种薄的分层结构由不同的、功能专门化的区域组成,这些区域通过锥体神经元的轴突相互通信。为了使数百条这样的皮质-皮质通路支持多种功能,它们的细胞和突触结构必须不同,以便在目标投射神经元处产生不同的计算。这些通路在哪些方面存在差异呢?通过起源和终止于不同的层,并选择性地靶向特定的兴奋性和抑制性神经元群体,这些“区域间”通路可以不同地控制单个神经元上突触输入的时间和强度,从而产生层特异性计算。由于转基因技术的快速发展,小鼠已成为理解皮质回路组织和功能规则的强大哺乳动物模型。在这里,我们回顾了我们对皮质分层如何限制哺乳动物大脑中长距离通信的理解,重点是小鼠视觉皮质网络。我们讨论了区域间通信的层状结构、新皮层各层在组织兴奋性和抑制性作用平衡中的作用,并强调了小鼠视觉皮层第1层的结构和功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ebf/5572236/9a9f1bd0cc4e/fnana-11-00071-g0001.jpg

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