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Rab3B 蛋白是海马抑制性突触长时程抑制和正常反转学习所必需的。

Rab3B protein is required for long-term depression of hippocampal inhibitory synapses and for normal reversal learning.

机构信息

Department of Molecular and Cellular Physiology and Howard Hughes Medical Institute, Stanford University, Stanford, CA 94305, USA.

出版信息

Proc Natl Acad Sci U S A. 2011 Aug 23;108(34):14300-5. doi: 10.1073/pnas.1112237108. Epub 2011 Aug 15.

Abstract

Rab3B, similar to other Rab3 isoforms, is a synaptic vesicle protein that interacts with the Rab3-interacting molecule (RIM) isoforms RIM1α and RIM2α as effector proteins in a GTP-dependent manner. Previous studies showed that at excitatory synapses, Rab3A and RIM1α are essential for presynaptically expressed long-term potentiation (LTP), whereas at inhibitory synapses RIM1α is required for endocannabinoid-dependent long-term depression (referred to as "i-LTD"). However, it remained unknown whether i-LTD also involves a Rab3 isoform and whether i-LTD, similar to other forms of long-term plasticity, is important for learning and memory. Here we show that Rab3B is highly enriched in inhibitory synapses in the CA1 region of the hippocampus. Using electrophysiological recordings in acute slices, we demonstrate that knockout (KO) of Rab3B does not alter the strength or short-term plasticity of excitatory or inhibitory synapses but does impair i-LTD significantly without changing classical NMDA receptor-dependent LTP. Behaviorally, we found that Rab3B KO mice exhibit no detectable changes in all basic parameters tested, including the initial phase of learning and memory. However, Rab3B KO mice did display a selective enhancement in reversal learning, as measured using Morris water-maze and fear-conditioning assays. Our data support the notion that presynaptic forms of long-term plasticity at excitatory and inhibitory synapses generally are mediated by a common Rab3/RIM-dependent pathway, with various types of synapses using distinct Rab3 isoforms. Moreover, our results suggest that i-LTD contributes to learning and memory, presumably by stabilizing circuits established in previous learning processes.

摘要

Rab3B 与其他 Rab3 同工型类似,是一种突触囊泡蛋白,以 GTP 依赖性方式作为效应蛋白与 Rab3 相互作用分子 (RIM) 同工型 RIM1α 和 RIM2α 相互作用。先前的研究表明,在兴奋性突触,Rab3A 和 RIM1α 对于突触前表达的长时程增强(LTP)是必需的,而在抑制性突触,RIM1α 对于内源性大麻素依赖性长时程抑制(称为“i-LTD”)是必需的。然而,是否 i-LTD 也涉及 Rab3 同工型,以及 i-LTD 是否与其他形式的长时程可塑性一样对于学习和记忆很重要,这些仍不清楚。在此,我们显示 Rab3B 在海马 CA1 区的抑制性突触中高度富集。通过在急性切片中的电生理记录,我们证明 Rab3B 敲除(KO)不会改变兴奋性或抑制性突触的强度或短期可塑性,但会显著损害 i-LTD,而不会改变经典 NMDA 受体依赖性 LTP。行为学研究表明,Rab3B KO 小鼠在所有测试的基本参数中均未表现出可检测的变化,包括学习和记忆的初始阶段。然而,Rab3B KO 小鼠在反转学习中确实表现出选择性增强,如使用 Morris 水迷宫和恐惧条件反射测定法所测量的那样。我们的数据支持这样的观点,即兴奋性和抑制性突触的突触前形式的长时程可塑性通常由共同的 Rab3/RIM 依赖性途径介导,不同类型的突触使用不同的 Rab3 同工型。此外,我们的结果表明,i-LTD 有助于学习和记忆,可能是通过稳定以前学习过程中建立的回路。

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