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刺激大鼠大脑皮层、丘脑和黑质后新纹状体突触电位的细胞内分析。

Intracellular analysis of synaptic potentials in rat neostriatum following stimulation of the cerebral cortex, thalamus, and substantia nigra.

作者信息

Vandermaelen C P, Kitai S T

出版信息

Brain Res Bull. 1980 Nov-Dec;5(6):725-33. doi: 10.1016/0361-9230(80)90212-9.

Abstract

Intracellular recordings were obtained from neostriatal neurons of unparalyzed male hooded rats anesthetized with urethane. Electrical stimulation of the cerebral cortex (Cx), centromedian-parafascicular area of the thalamus (CMP), and the substantia nigra (SN) elicited monosynaptic excitatory postsynaptic potentials (EPSPs) in neostriatal neurons. Response latencies were, on the average, 3.7 msec, 3.3 msec, and 3.8 msec, for Cx, CMP and SN stimulation, respectively. Over 85% of recorded neurons showed convergence of inputs from all three stimulation sites. The SN induced EPSP sometimes had two components, with the second component beginning 10-15 msec after the first. EPSPs from all three stimulation sites were often followed by inhibitory postsynaptic potentials (IPSPs) lasting from 50-250 msec. Double shock experiments indicated that SN induced EPSPs could be reduced in amplitude by 20-80% when preceded by conditioning stimulation to Cx, CMP or SN. In contrast, the EPSP elicited by Cx stimulation were unaffected by conditioning stimulation. Some recorded neurons were morphologically identified by means of intracellular injection of horseradish peroxidase. All were "medium spiny" neurons. The results of the present study agree well with those of previous studies of cat caudate neurons, and extend them to rat neostriatal neurons.

摘要

在使用氨基甲酸乙酯麻醉的未瘫痪雄性带帽大鼠的新纹状体神经元上进行细胞内记录。对大脑皮层(Cx)、丘脑中央中-束旁核区域(CMP)和黑质(SN)进行电刺激,可在新纹状体神经元中诱发单突触兴奋性突触后电位(EPSP)。对于Cx、CMP和SN刺激,反应潜伏期平均分别为3.7毫秒, 3.3毫秒和3.8毫秒。超过85%的记录神经元显示来自所有三个刺激部位的输入汇聚。SN诱发的EPSP有时有两个成分,第二个成分在第一个成分后10-15毫秒开始。来自所有三个刺激部位的EPSP之后常常跟随持续50-250毫秒的抑制性突触后电位(IPSP)。双脉冲实验表明,当对Cx、CMP或SN进行条件刺激后,SN诱发的EPSP幅度可降低20-80%。相反,Cx刺激诱发的EPSP不受条件刺激的影响。一些记录的神经元通过细胞内注射辣根过氧化物酶进行形态学鉴定。所有神经元均为“中等棘状”神经元。本研究结果与先前对猫尾状核神经元的研究结果非常吻合,并将其扩展到大鼠新纹状体神经元。

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