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蓝斑核与多巴胺依赖性记忆巩固。

Locus Coeruleus and Dopamine-Dependent Memory Consolidation.

机构信息

Department of Anatomy, Hokkaido University Graduate School of Medicine, Sapporo, Hokkaido 060-8638, Japan.

Centre for Discovery Brain Science, Edinburgh Neuroscience, The University of Edinburgh, 1 George Square, Edinburgh EH8 9JZ, UK.

出版信息

Neural Plast. 2017;2017:8602690. doi: 10.1155/2017/8602690. Epub 2017 Oct 16.

Abstract

Most everyday memories including many episodic-like memories that we may form automatically in the hippocampus (HPC) are forgotten, while some of them are retained for a long time by a memory stabilization process, called initial memory consolidation. Specifically, the retention of everyday memory is enhanced, in humans and animals, when something novel happens shortly before or after the time of encoding. Converging evidence has indicated that dopamine (DA) signaling via D/D receptors in HPC is required for persistence of synaptic plasticity and memory, thereby playing an important role in the novelty-associated memory enhancement. In this review paper, we aim to provide an overview of the key findings related to D/D receptor-dependent persistence of synaptic plasticity and memory in HPC, especially focusing on the emerging evidence for a role of the locus coeruleus (LC) in DA-dependent memory consolidation. We then refer to candidate brain areas and circuits that might be responsible for detection and transmission of the environmental novelty signal and molecular and anatomical evidence for the LC-DA system. We also discuss molecular mechanisms that might mediate the environmental novelty-associated memory enhancement, including plasticity-related proteins that are involved in initial memory consolidation processes in HPC.

摘要

大多数日常记忆,包括我们可能在海马体(HPC)中自动形成的许多类似情景记忆,都会被遗忘,而其中一些则通过称为初始记忆巩固的记忆稳定过程被长时间保留。具体来说,当在编码时间前后不久发生新事物时,人类和动物的日常记忆的保留会增强。越来越多的证据表明,海马体中的 D1/D5 受体的多巴胺(DA)信号对于突触可塑性和记忆的持久性很重要,从而在与新奇相关的记忆增强中发挥重要作用。在这篇综述论文中,我们旨在提供与 HPC 中突触可塑性和记忆的 D1/D5 受体依赖性持久性相关的关键发现的概述,特别是关注蓝斑核(LC)在 DA 依赖性记忆巩固中的作用的新出现证据。然后,我们提到可能负责检测和传递环境新奇信号的候选脑区和回路,以及 LC-DA 系统的分子和解剖学证据。我们还讨论了可能介导环境新奇相关记忆增强的分子机制,包括涉及 HPC 中初始记忆巩固过程的可塑性相关蛋白。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/132f/5662828/1476ab5a2c92/NP2017-8602690.001.jpg

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