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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Mossy cells and different subpopulations of pyramidal neurons are immunoreactive for cocaine- and amphetamine-regulated transcript peptide in the hippocampal formation of non-human primates and tree shrew (Tupaia belangeri).
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Mossy cells and different subpopulations of pyramidal neurons are immunoreactive for cocaine- and amphetamine-regulated transcript peptide in the hippocampal formation of non-human primates and tree shrew (Tupaia belangeri).

机译:在非人类灵长类和树sh(Tupaia belangeri)的海马结构中,苔藓细胞和锥体神经元的不同亚群对可卡因和苯丙胺调节的转录肽具有免疫反应性。

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Cocaine- and amphetamine-regulated transcript peptide mRNA was discovered in the rat striatum following cocaine and amphetamine administration. Since both psychostimulants elicit memory-related effects, localization of cocaine- and amphetamine-regulated transcript peptide in the hippocampal formation may have functional importance. Previous studies demonstrated different cellular localizations of cocaine- and amphetamine-regulated transcript peptide in humans and in rodents. Mossy cells were cocaine- and amphetamine-regulated transcript-positive in the human dentate gyrus, whereas granule cells contained this peptide in the rat. In the present study, the localization of cocaine- and amphetamine-regulated transcript peptide was examined using immunohistochemistry in the hippocampal formation of the rhesus monkey (Macaca mulatta), the common marmoset monkey (Callithrix jacchus) and in the tree shrew (Tupaia belangeri). In these species principal neurons of the hippocampal formation were cocaine- and amphetamine-regulated transcript-immunoreactive. In both monkeys and tree shrews, mossy cells of the hilus were cocaine- and amphetamine-regulated transcript-positive whereas granule cells of the dentate gyrus were cocaine- and amphetamine-regulated transcript-negative. The dense cocaine- and amphetamine-regulated transcript-immunoreactive axonal plexus of the associational pathway outlined the inner one-third of the dentate molecular layer. In the hippocampus of the tree shrew and marmoset monkey, a subset of CA3 pyramidal cells were cocaine- and amphetamine-regulated transcript-immunoreactive. In the marmoset monkey, cocaine- and amphetamine-regulated transcript labeling was found only in layer V pyramidal cells of the entorhinal cortex, while in the rhesus monkey, pyramidal cells of layers II and III were cocaine- and amphetamine-regulated transcript-immunopositive. Our results show that cocaine- and amphetamine-regulated transcript positive neurons in the dentate gyrus of non-human primates are similar to that of the human. Furthermore, in the hippocampal formation of the tree shrew similar cocaine- and amphetamine-regulated transcript-immunoreactive cell-types were observed as in monkeys, supporting their evolutionary relationship with primates. Mossy cells and granule cells are members of a mutual excitatory intrahippocampal circuitry, therefore cocaine- and amphetamine-regulated transcript-immunoreactivity of these neurons in primates and rodents suggests that psychostimulants cocaine and amphetamine may induce memory-related effects at different points of the same excitatory circuitry in the hippocampal formation.
机译:在服用可卡因和苯丙胺后,在大鼠纹状体中发现了可卡因和苯丙胺调节的转录肽mRNA。由于两种精神兴奋剂均引起记忆相关的作用,可卡因和苯丙胺调节的转录肽在海马结构中的定位可能具有功能重要性。先前的研究表明可卡因和苯丙胺调节的转录肽在人和啮齿动物中的不同细胞定位。在人齿状回中,生苔细胞是可卡因和苯丙胺调节的转录物阳性,而在大鼠中,颗粒细胞中含有该肽。在本研究中,使用免疫组织化学方法检测了恒河猴(Macaca mulatta),peptide猴(Callithrix jacchus)和树sh(Tupaia belangeri)海马结构中可卡因和苯丙胺调节的转录肽的定位。 。在这些物种中,海马结构的主要神经元是可卡因和苯丙胺调节的转录免疫反应活性。在猴子和树sh中,希尔斯的苔藓细胞是可卡因和苯丙胺调节的转录物阳性,而齿状回的颗粒细胞是可卡因和苯丙胺调节的转录物阴性。密集的可卡因和苯丙胺调节转录途径的免疫反应性轴突神经丛勾勒出齿状分子层内部的三分之一。在树sh和mar猴的海马中,CA3锥体细胞的一部分是可卡因和苯丙胺调节的转录免疫反应活性。在the猴中,可卡因和苯丙胺调节的转录物标记仅在内嗅皮层的V层锥体细胞中发现,而在恒河猴中,第二层和第三层的锥体细胞是可卡因和苯丙胺调节的转录物免疫阳性。我们的结果表明,非人类灵长类动物齿状回中可卡因和苯丙胺调节的转录阳性神经元与人类相似。此外,在树的海马结构中,观察到与猴子类似的可卡因和苯丙胺调节的转录免疫反应细胞类型,支持它们与灵长类动物的进化关系。苔藓细胞和颗粒细胞是相互兴奋的海马内回路的成员,因此可卡因和苯丙胺调节的这些神经元在灵长类动物和啮齿动物中的转录免疫反应表明,精神刺激剂可卡因和苯丙胺可能在同一兴奋剂的不同点诱导记忆相关效应海马结构中的电路。

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