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纹状体的突触组织

Synaptic organization of the striatum.

作者信息

Gerfen C R

机构信息

Laboratory of Cell Biology, National Institute of Mental Health, Bethesda, Maryland 20892.

出版信息

J Electron Microsc Tech. 1988 Nov;10(3):265-81. doi: 10.1002/jemt.1060100305.

DOI:10.1002/jemt.1060100305
PMID:3069970
Abstract

The striatum, the main component of the basal ganglia, is composed of mainly one type of neuron, the so-called medium spiny neuron. This neuron cell type, which constitutes over 90% of striatal neurons, is the major output neuron of the striatum. Combined ultrastructural neuroanatomical methods have elucidated the organization of afferent connectivity to these neurons. The major physiologic function of striatal efferent activity appears to be inhibition of tonically active GABAergic neurons in the globus pallidus and substantia nigra pars reticulata. Thus, the excitatory input from the cerebral cortex, whose afferents make asymmetric synapses with the spines of medium spiny neurons, appears to drive the efferent activity of the striatum. Other extrinsic and intrinsic afferent synapses are situated in a position to regulate the effect of the corticostriatal excitatory input to the medium spiny neurons. For example, dopaminergic afferents from the midbrain make mainly symmetric synapses with the spine necks and dendritic shafts of the medium spiny neurons. Medium spiny neurons themselves have local axon collaterals, in addition to their efferent axon that exits the striatum, which serve to link together local clusters of medium spiny neurons. These local axon collaterals, which contain either GABA, substance P, or enkephalin, also make mainly symmetric synapses with the necks of spines or dendritic shafts of medium spiny neurons. Other afferents with similar synaptic connections to these neurons arise from cholinergic or somatostatinergic striatal intrinsic neurons. Additionally, the patterns of extrinsic and intrinsic afferents to medium spiny neurons and their extrinsic projections are related to the organization of medium spiny neurons into two mosaically organized macroscopic compartments, the striatal patches and matrix.

摘要

纹状体是基底神经节的主要组成部分,主要由一种神经元,即所谓的中等棘状神经元构成。这种神经元类型占纹状体神经元的90%以上,是纹状体的主要输出神经元。联合超微结构神经解剖学方法已经阐明了这些神经元传入连接的组织方式。纹状体传出活动的主要生理功能似乎是抑制苍白球和黑质网状部中持续活跃的γ-氨基丁酸能神经元。因此,来自大脑皮质的兴奋性输入,其传入纤维与中等棘状神经元的棘形成不对称突触,似乎驱动了纹状体的传出活动。其他外在和内在传入突触的位置能够调节皮质-纹状体兴奋性输入对中等棘状神经元的作用。例如,来自中脑的多巴胺能传入纤维主要与中等棘状神经元的棘颈和树突干形成对称突触。中等棘状神经元除了有离开纹状体的传出轴突外,自身还有局部轴突侧支,这些侧支用于将局部的中等棘状神经元簇连接在一起。这些局部轴突侧支含有γ-氨基丁酸、P物质或脑啡肽,也主要与中等棘状神经元的棘颈或树突干形成对称突触。与这些神经元有类似突触连接的其他传入纤维来自胆碱能或生长抑素能纹状体内在神经元。此外,中等棘状神经元的外在和内在传入模式及其外在投射模式与中等棘状神经元组织成两个镶嵌组织的宏观区室,即纹状体小体和基质有关。

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1
Synaptic organization of the striatum.纹状体的突触组织
J Electron Microsc Tech. 1988 Nov;10(3):265-81. doi: 10.1002/jemt.1060100305.
2
Monosynaptic cortical input and local axon collaterals of identified striatonigral neurons. A light and electron microscopic study using the Golgi-peroxidase transport-degeneration procedure.已鉴定的纹状体黑质神经元的单突触皮质输入和局部轴突侧支。一项使用高尔基过氧化物酶转运-变性程序的光镜和电镜研究。
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J Comp Neurol. 1988 Mar 8;269(2):219-34. doi: 10.1002/cne.902690207.
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Identification of synaptic terminals of thalamic or cortical origin in contact with distinct medium-size spiny neurons in the rat neostriatum.鉴定大鼠新纹状体中与不同中型棘状神经元接触的丘脑或皮质起源的突触终末。
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Synapses made by axons of callosal projection neurons in mouse somatosensory cortex: emphasis on intrinsic connections.小鼠体感皮层中胼胝体投射神经元轴突形成的突触:着重于内在连接。
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The neostriatal mosaic. I. Compartmental organization of projections from the striatum to the substantia nigra in the rat.新纹状体镶嵌图。I. 大鼠纹状体向黑质投射的分区组织
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The morphology and synaptic connections of spiny stellate neurons in monkey visual cortex (area 17): a Golgi-electron microscopic study.猕猴视觉皮层(17区)棘状星状神经元的形态与突触连接:一项高尔基电子显微镜研究
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GABA(B) receptors at glutamatergic synapses in the rat striatum.大鼠纹状体中谷氨酸能突触处的GABA(B)受体
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Fine structure and synaptic connections of the common spiny neuron of the rat neostriatum: a study employing intracellular inject of horseradish peroxidase.大鼠新纹状体普通棘状神经元的精细结构和突触连接:一项采用辣根过氧化物酶细胞内注射的研究。
J Comp Neurol. 1980 Dec 1;194(3):599-615. doi: 10.1002/cne.901940308.
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Quantification of thalamocortical synapses with spiny stellate neurons in layer IV of mouse somatosensory cortex.对小鼠体感皮层IV层中棘状星型神经元的丘脑皮质突触进行定量分析。
J Comp Neurol. 1986 Nov 15;253(3):303-14. doi: 10.1002/cne.902530303.

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