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记忆形成中的细胞粘附分子。

Cell-adhesion molecules in memory formation.

作者信息

Schmidt R

机构信息

Department of Zoology, Johann-Wolgang-Goethe-University, Frankfurt/Main, Germany.

出版信息

Behav Brain Res. 1995 Jan 23;66(1-2):65-72. doi: 10.1016/0166-4328(94)00126-z.

Abstract

After learning events the CNS of higher organisms selects, which acquired informations are permanently stored as a memory trace. This period of memory consolidation is susceptible to interference by biochemical inhibitors of transcription and translation. Ependymin is a specific CNS glycoprotein functionally involved in memory consolidation in goldfish: after active shock-avoidance conditioning ependymin mRNA is rapidly induced in meningeal fibroblasts followed by enhanced synthesis and secretion of several closely related forms of the protein. Intracranial injections of anti-ependymin antisera or antisense oligodeoxynucleotides interfere specifically with memory consolidation, indicating that only de novo synthesized ependymin molecules are involved. Ependymin is capable of directing the growth of central axons in vitro and participates in neuronal regeneration in situ, presumably by its HNK-1 cell-adhesion epitope. Experiments reviewed in this article suggest a model that involves two regulation mechanisms for the function of ependymin in behavioural plasticity: while hormones appear to determine, how much of this cell adhesion molecule is synthesized after learning, local changes of metal cation concentrations in the micro-environment of activated neurons may polymerize ependymin at those synapses, that have to be consolidated to improve their efficacy for future use.

摘要

在经历学习事件后,高等生物的中枢神经系统会选择哪些获得的信息作为记忆痕迹被永久存储。这段记忆巩固期易受转录和翻译的生化抑制剂干扰。ependymin是一种特定的中枢神经系统糖蛋白,在金鱼的记忆巩固中发挥功能性作用:在主动回避条件反射后,ependymin mRNA在脑膜成纤维细胞中迅速被诱导,随后该蛋白的几种密切相关形式的合成和分泌增加。颅内注射抗ependymin抗血清或反义寡脱氧核苷酸会特异性干扰记忆巩固,表明只有新合成的ependymin分子参与其中。ependymin能够在体外引导中枢轴突生长,并可能通过其HNK-1细胞粘附表位参与原位神经元再生。本文综述的实验提出了一个模型,该模型涉及ependymin在行为可塑性方面功能的两种调节机制:虽然激素似乎决定学习后合成这种细胞粘附分子的量,但激活神经元微环境中金属阳离子浓度的局部变化可能会使ependymin在那些必须巩固以提高其未来使用效率的突触处聚合。

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