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本文引用的文献

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Segregation of feedforward and feedback projections in mouse visual cortex.小鼠视觉皮层中前馈和反馈投射的分离。
J Comp Neurol. 2011 Dec 15;519(18):3672-83. doi: 10.1002/cne.22675.
2
Structural basis for the role of inhibition in facilitating adult brain plasticity.抑制在促进成人大脑可塑性中的作用的结构基础。
Nat Neurosci. 2011 May;14(5):587-94. doi: 10.1038/nn.2799. Epub 2011 Apr 10.
3
Evaluation of inputs to rat primary auditory cortex from the suprageniculate nucleus and extrastriate visual cortex.评估上橄榄复合体核和外纹状视皮层向大鼠初级听觉皮层的传入输入。
J Comp Neurol. 2010 Sep 15;518(18):3679-700. doi: 10.1002/cne.22411.
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Neuronal structural remodeling: is it all about access?神经元结构重塑:关键在于可及性?
Curr Opin Neurobiol. 2010 Oct;20(5):557-62. doi: 10.1016/j.conb.2010.06.002.
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Experience-dependent structural synaptic plasticity in the mammalian brain.哺乳动物大脑中依赖经验的结构性突触可塑性。
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Synaptic mechanisms for plasticity in neocortex.新皮层可塑性的突触机制
Annu Rev Neurosci. 2009;32:33-55. doi: 10.1146/annurev.neuro.051508.135516.
7
A dynamic zone defines interneuron remodeling in the adult neocortex.一个动态区域定义了成年新皮层中中间神经元的重塑。
Proc Natl Acad Sci U S A. 2008 Dec 16;105(50):19968-73. doi: 10.1073/pnas.0810149105. Epub 2008 Dec 9.
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Mapping the matrix: the ways of neocortex.绘制矩阵:新皮层的构成方式
Neuron. 2007 Oct 25;56(2):226-38. doi: 10.1016/j.neuron.2007.10.017.
9
Choice of cranial window type for in vivo imaging affects dendritic spine turnover in the cortex.用于体内成像的颅骨窗类型的选择会影响皮质中树突棘的更新。
Nat Neurosci. 2007 May;10(5):549-51. doi: 10.1038/nn1883. Epub 2007 Apr 8.
10
Area map of mouse visual cortex.小鼠视觉皮层区域图。
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抑制性树突动力学作为成年皮质微回路的普遍特征。

Inhibitory dendrite dynamics as a general feature of the adult cortical microcircuit.

机构信息

Picower Institute for Learning and Memory and Departments of Biology and Brain and Cognitive Sciences, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

J Neurosci. 2011 Aug 31;31(35):12437-43. doi: 10.1523/JNEUROSCI.0420-11.2011.

DOI:10.1523/JNEUROSCI.0420-11.2011
PMID:21880904
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3180878/
Abstract

The mammalian neocortex is functionally subdivided into architectonically distinct regions that process various types of information based on their source of afferent input. Yet, the modularity of neocortical organization in terms of cell type and intrinsic circuitry allows afferent drive to continuously reassign cortical map space. New aspects of cortical map plasticity include dynamic turnover of dendritic spines on pyramidal neurons and remodeling of interneuron dendritic arbors. While spine remodeling occurs in multiple cortical regions, it is not yet known whether interneuron dendrite remodeling is common across primary sensory and higher-level cortices. It is also unknown whether, like pyramidal dendrites, inhibitory dendrites respect functional domain boundaries. Given the importance of the inhibitory circuitry to adult cortical plasticity and the reorganization of cortical maps, we sought to address these questions by using two-photon microscopy to monitor interneuron dendritic arbors of thy1-GFP-S transgenic mice expressing GFP in neurons sparsely distributed across the superficial layers of the neocortex. We find that interneuron dendritic branch tip remodeling is a general feature of the adult cortical microcircuit, and that remodeling rates are similar across primary sensory regions of different modalities, but may differ in magnitude between primary sensory versus higher cortical areas. We also show that branch tip remodeling occurs in bursts and respects functional domain boundaries.

摘要

哺乳动物新皮质在功能上被细分为不同的区域,根据传入输入的来源,这些区域处理各种类型的信息。然而,新皮质组织在细胞类型和内在电路方面的模块化允许传入驱动不断重新分配皮质图空间。皮质图可塑性的新方面包括锥体神经元上树突棘的动态更替和中间神经元树突分支的重塑。虽然在多个皮质区域都发生了棘突重塑,但尚不清楚中间神经元树突重塑是否在初级感觉和高级皮质中普遍存在。也不知道像锥体树突一样,抑制性树突是否尊重功能域边界。鉴于抑制性回路对成人皮质可塑性和皮质图重组的重要性,我们试图通过使用双光子显微镜来监测表达 GFP 的神经元稀疏分布在新皮质浅层中的 thy1-GFP-S 转基因小鼠的中间神经元树突分支,来解决这些问题。我们发现,中间神经元树突分支尖端重塑是成年皮质微电路的一个普遍特征,并且不同模态的初级感觉区域的重塑率相似,但在初级感觉区与高级皮质区之间,其幅度可能不同。我们还表明,分支尖端重塑是爆发式发生的,并尊重功能域边界。