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海马长时程压抑介导 Morris 水迷宫中的空间反转学习。

Hippocampal long-term depression mediates spatial reversal learning in the Morris water maze.

机构信息

Ministry of Education Key Laboratory of Child Development and Disorders, Children's Hospital of Chongqing Medical University, Chongqing 400014, PR China.

出版信息

Neuropharmacology. 2013 Jan;64:65-73. doi: 10.1016/j.neuropharm.2012.06.027. Epub 2012 Jun 23.

Abstract

Synaptic plasticity at hippocampal excitatory synapses has been proposed as the cellular mechanism underlying spatial learning and memory. However, most previous studies have focused on the role of long-term potentiation (LTP) in learning and memory, and much less is known about the role of long-term depression (LTD). Here, we report that hippocampal-dependent spatial learning in the Morris water maze facilitated hippocampal CA1 LTD induction in vivo. The LTD can be blocked by systemic application of the selective GluN2B antagonist Ro25-6981 (6 mg/kg, i.p.) or a synthetic peptide Tat-GluA2(3Y) (3 μmol/kg, i.p.) that interferes with the endocytosis of AMPA receptors. In addition, systemic or intrahippocampal administration of these two mechanistically and structurally distinct inhibitors impaired spatial reversal learning of a novel target location, when the hidden platform was moved to the quadrant opposite the initial target location. Notably, acute elevated-platform stress, which facilitates hippocampal LTD induction, enhanced both acquisition and retrieval of spatial reversal memory. The present study demonstrates that reversal learning is impaired by blocking hippocampal LTD, and enhanced by facilitating hippocampal LTD, suggesting that hippocampal LTD may be necessary and sufficient to mediate new information processing. This article is part of a Special Issue entitled 'Cognitive Enhancers'.

摘要

海马兴奋性突触的突触可塑性被认为是学习和记忆的细胞机制。然而,大多数先前的研究都集中在长时程增强 (LTP) 在学习和记忆中的作用,而对长时程抑制 (LTD) 的作用知之甚少。在这里,我们报告了在 Morris 水迷宫中的海马依赖性空间学习促进了体内 CA1 区 LTD 的诱导。LTD 可以通过系统应用选择性 GluN2B 拮抗剂 Ro25-6981(6mg/kg,ip)或与 AMPA 受体内吞作用干扰的合成肽 Tat-GluA2(3Y)(3μmol/kg,ip)来阻断。此外,当隐藏平台移动到初始目标位置对面的象限时,这两种机制和结构上不同的抑制剂的全身或海马内给药会损害新目标位置的空间反转学习。值得注意的是,急性高架平台应激会促进海马 LTD 的诱导,从而增强空间反转记忆的获得和检索。本研究表明,阻断海马 LTD 会损害反转学习,而促进海马 LTD 会增强反转学习,这表明海马 LTD 可能是介导新信息处理所必需和充分的。本文是题为“认知增强剂”的特刊的一部分。

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