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海马回波缺失并不排除 APP/PS1 小鼠空间记忆的形成。

Deficit in hippocampal ripples does not preclude spatial memory formation in APP/PS1 mice.

机构信息

Nałęcz Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 02-109, Warsaw, Poland.

Université de Bordeaux, UMR 5293, Institut des Maladies Neurodégénératives, 33000, Bordeaux, France.

出版信息

Sci Rep. 2019 Dec 27;9(1):20129. doi: 10.1038/s41598-019-56582-w.

Abstract

General theory of declarative memory formation posits a cortical-hippocampal dialog during which hippocampal ripple oscillations support information transfer and long-term consolidation of hippocampus dependent memories. Brain dementia, as Alzheimer disease (AD), is accompanied by memory loss and inability to form new memories. A large body of work has shown variety of mechanisms acting at cellular and molecular levels which can putatively play an important role in the impairment of memory formation. However, far less is known about changes occurring at the network-level activity patterns that support memory processing. Using freely moving APP/PS1 mice, a model of AD, we undertook a study to unravel the alterations of the activity of hippocampal and cortical circuits during generation of ripples in the transgenic and wild-type mice undergoing encoding and consolidation of spatial information. We report that APP/PS1 animals are able to consolidate spatial memory despite a major deficit of hippocampal ripples occurrence rate and learning dependent dynamics. We propose that these impairments may be compensated by an increase of the occurrence of cortical ripples and reorganization of cortical-hippocampal interaction.

摘要

陈述性记忆形成的一般理论假设,在海马回波振荡支持信息传递和海马依赖记忆的长期巩固过程中,大脑皮层和海马体之间存在对话。痴呆症,如阿尔茨海默病(AD),伴随着记忆丧失和无法形成新的记忆。大量研究表明,在细胞和分子水平上存在多种机制,这些机制可能在记忆形成受损中发挥重要作用。然而,对于支持记忆处理的网络级活动模式的变化知之甚少。使用自由活动的 APP/PS1 小鼠,即 AD 的一种模型,我们进行了一项研究,以揭示在编码和巩固空间信息过程中产生回波时,转基因和野生型小鼠中海马和皮质回路活动的变化。我们报告说,尽管 APP/PS1 动物的海马回波发生率和学习相关动力学存在严重缺陷,但它们仍能巩固空间记忆。我们提出,这些损伤可能通过增加皮质回波的发生和皮质-海马相互作用的重组来得到补偿。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba70/6934724/80cde16ea4c2/41598_2019_56582_Fig1_HTML.jpg

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