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第1层神经元主导的皮质抑制性和去抑制性中间神经元回路的典型组织

Canonical Organization of Layer 1 Neuron-Led Cortical Inhibitory and Disinhibitory Interneuronal Circuits.

作者信息

Lee Alice J, Wang Guangfu, Jiang Xiaolong, Johnson Seraphina M, Hoang Elizabeth T, Lanté Fabien, Stornetta Ruth L, Beenhakker Mark P, Shen Ying, Julius Zhu J

机构信息

Department of Pharmacology Department of Biology.

Department of Pharmacology.

出版信息

Cereb Cortex. 2015 Aug;25(8):2114-26. doi: 10.1093/cercor/bhu020. Epub 2014 Feb 18.

Abstract

Interneurons play a key role in cortical function and dysfunction, yet organization of cortical interneuronal circuitry remains poorly understood. Cortical Layer 1 (L1) contains 2 general GABAergic interneuron groups, namely single bouquet cells (SBCs) and elongated neurogliaform cells (ENGCs). SBCs predominantly make unidirectional inhibitory connections (SBC→) with L2/3 interneurons, whereas ENGCs frequently form reciprocal inhibitory and electric connections (ENGC↔) with L2/3 interneurons. Here, we describe a systematic investigation of the pyramidal neuron targets of L1 neuron-led interneuronal circuits in the rat barrel cortex with simultaneous octuple whole-cell recordings and report a simple organizational scheme of the interneuronal circuits. Both SBCs→ and ENGC ↔ L2/3 interneuronal circuits connect to L2/3 and L5, but not L6, pyramidal neurons. SBC → L2/3 interneuronal circuits primarily inhibit the entire dendritic-somato-axonal axis of a few L2/3 and L5 pyramidal neurons located within the same column. In contrast, ENGC ↔ L2/3 interneuronal circuits generally inhibit the distal apical dendrite of many L2/3 and L5 pyramidal neurons across multiple columns. Finally, L1 interneuron-led circuits target distinct subcellular compartments of L2/3 and L5 pyramidal neurons in a L2/3 interneuron type-dependent manner. These results suggest that L1 neurons form canonical interneuronal circuits to control information processes in both supra- and infragranular cortical layers.

摘要

中间神经元在皮层功能及功能障碍中发挥关键作用,然而皮层中间神经元回路的组织方式仍知之甚少。皮层第1层(L1)包含两类主要的γ-氨基丁酸能中间神经元,即单束细胞(SBCs)和长形神经胶质样细胞(ENGCs)。SBCs主要与L2/3中间神经元形成单向抑制性连接(SBC→),而ENGCs则经常与L2/3中间神经元形成相互抑制性和电连接(ENGC↔)。在此,我们通过同步八通道全细胞记录,对大鼠桶状皮层中由L1神经元主导的中间神经元回路的锥体神经元靶点进行了系统研究,并报告了中间神经元回路的一种简单组织模式。SBCs→和ENGC↔L2/3中间神经元回路均连接到L2/3和L5,但不连接到L6锥体神经元。SBC→L2/3中间神经元回路主要抑制位于同一柱内的少数L2/3和L5锥体神经元的整个树突-胞体-轴突轴。相比之下,ENGC↔L2/3中间神经元回路通常抑制多列中许多L2/3和L5锥体神经元的远端顶端树突。最后,由L1中间神经元主导的回路以依赖于L2/3中间神经元类型的方式靶向L2/3和L5锥体神经元的不同亚细胞区室。这些结果表明,L1神经元形成典型的中间神经元回路,以控制颗粒上层和颗粒下层皮层中的信息处理过程。

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本文引用的文献

1
The emerging role of GABAB receptors as regulators of network dynamics: fast actions from a 'slow' receptor?
Curr Opin Neurobiol. 2014 Jun;26:15-21. doi: 10.1016/j.conb.2013.10.002. Epub 2013 Nov 19.
2
Untangling GABAergic wiring in the cortical microcircuit.
Curr Opin Neurobiol. 2014 Jun;26:7-14. doi: 10.1016/j.conb.2013.10.003. Epub 2013 Nov 16.
3
Cortical interneurons that specialize in disinhibitory control.
Nature. 2013 Nov 28;503(7477):521-4. doi: 10.1038/nature12676. Epub 2013 Oct 6.
4
Inhibition of inhibition in visual cortex: the logic of connections between molecularly distinct interneurons.
Nat Neurosci. 2013 Aug;16(8):1068-76. doi: 10.1038/nn.3446. Epub 2013 Jun 30.
5
Development of layer 1 neurons in the mouse neocortex.
Cereb Cortex. 2014 Oct;24(10):2604-18. doi: 10.1093/cercor/bht114. Epub 2013 May 16.
6
The organization of two new cortical interneuronal circuits.
Nat Neurosci. 2013 Feb;16(2):210-8. doi: 10.1038/nn.3305. Epub 2013 Jan 13.
7
A cellular mechanism for cortical associations: an organizing principle for the cerebral cortex.
Trends Neurosci. 2013 Mar;36(3):141-51. doi: 10.1016/j.tins.2012.11.006. Epub 2012 Dec 25.
8
Thalamic control of layer 1 circuits in prefrontal cortex.
J Neurosci. 2012 Dec 5;32(49):17813-23. doi: 10.1523/JNEUROSCI.3231-12.2012.
9
Nonlinear dendritic integration of sensory and motor input during an active sensing task.
Nature. 2012 Dec 13;492(7428):247-51. doi: 10.1038/nature11601. Epub 2012 Nov 11.
10
Gating and control of primary visual cortex by pulvinar.
Nat Neurosci. 2012 Jun;15(6):905-12. doi: 10.1038/nn.3106.

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