A Variable Clock Underlies Internally Generated Hippocampal Sequences.

Q3 Medicine
Experimental oncology Pub Date : 2022-05-04 Epub Date: 2022-03-29 DOI:10.1523/JNEUROSCI.1120-21.2022
Xinyi Deng, Shizhe Chen, Marielena Sosa, Mattias P Karlsson, Xue-Xin Wei, Loren M Frank
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引用次数: 0

Abstract

Humans have the ability to store and retrieve memories with various degrees of specificity, and recent advances in reinforcement learning have identified benefits to learning when past experience is represented at different levels of temporal abstraction. How this flexibility might be implemented in the brain remains unclear. We analyzed the temporal organization of male rat hippocampal population spiking to identify potential substrates for temporally flexible representations. We examined activity both during locomotion and during memory-associated population events known as sharp-wave ripples (SWRs). We found that spiking during SWRs is rhythmically organized with higher event-to-event variability than spiking during locomotion-associated population events. Decoding analyses using clusterless methods further indicate that a similar spatial experience can be replayed in multiple SWRs, each time with a different rhythmic structure whose periodicity is sampled from a log-normal distribution. This variability increases with experience despite the decline in SWR rates that occurs as environments become more familiar. We hypothesize that the variability in temporal organization of hippocampal spiking provides a mechanism for storing experiences with various degrees of specificity.SIGNIFICANCE STATEMENT One of the most remarkable properties of memory is its flexibility: the brain can retrieve stored representations at varying levels of detail where, for example, we can begin with a memory of an entire extended event and then zoom in on a particular episode. The neural mechanisms that support this flexibility are not understood. Here we show that hippocampal sharp-wave ripples, which mark the times of memory replay and are important for memory storage, have a highly variable temporal structure that is well suited to support the storage of memories at different levels of detail.

可变时钟是内部生成海马序列的基础
人类有能力以不同程度的特异性存储和检索记忆,而强化学习的最新进展已经发现,当过去的经验以不同的时间抽象水平表示时,对学习有好处。这种灵活性如何在大脑中实现仍不清楚。我们分析了雄性大鼠海马群体尖峰的时间组织,以确定时间灵活表征的潜在基底。我们研究了运动时和记忆相关的群体事件(称为尖波涟漪(SWR))时的活动。我们发现,与运动相关的群体事件期间的尖波波纹相比,尖波波纹期间的尖波活动具有更高的事件间变异性,是有节奏的。使用无簇方法进行的解码分析进一步表明,类似的空间体验可以在多个 SWR 中重放,每次都具有不同的节奏结构,其周期性是从对数正态分布中采样的。尽管随着环境变得越来越熟悉,SWR 率会下降,但这种可变性会随着经验的增加而增加。我们假设,海马尖峰时间组织的可变性提供了一种以不同程度的特异性来存储经验的机制。意义声明 记忆最显著的特性之一是它的灵活性:大脑可以检索不同细节水平的存储表征,例如,我们可以从对整个扩展事件的记忆开始,然后放大到某个特定的情节。支持这种灵活性的神经机制尚不清楚。在这里,我们展示了海马锐波波纹,它标志着记忆重放的时间,对记忆存储非常重要,具有高度可变的时间结构,非常适合支持不同细节水平的记忆存储。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Experimental oncology
Experimental oncology Medicine-Oncology
CiteScore
1.40
自引率
0.00%
发文量
49
期刊介绍: The Experimental Oncology is an English-language journal that publishes review articles, original contributions, short communications, case reports and technical advances presenting new data in the field of experimental and fundamental oncology. Manuscripts should be written in English, contain original work, which has not been published or submitted for publication elsewhere. It also implies the transfer of the Copyright from the author to “Experimental Oncology”. No part of journal publications may be reproduced, stored in a retrieval system or transmitted in any form or by any means without the prior permission of the publisher.
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