睡眠阶段对抗性地调节再激活漂移。

IF 14.7 1区 医学 Q1 NEUROSCIENCES
Neuron Pub Date : 2025-05-07 Epub Date: 2025-03-24 DOI:10.1016/j.neuron.2025.02.025
Lars Bollmann, Peter Baracskay, Federico Stella, Jozsef Csicsvari
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引用次数: 0

摘要

海马体在睡眠中唤醒神经元集合的再激活是系统巩固的关键初始步骤。然而,尚不清楚重新激活的组装体是静态的还是在长时间睡眠中逐渐重组的。我们在大约20小时的睡眠/休息期间追踪了重新激活的CA1组装模式,并将它们与在大鼠空间学习范式之前或之后看到的组装联系起来。我们发现,重新激活的组装模式逐渐转变,并开始与随后的回忆过程中看到的相似。快速眼动(REM)睡眠和非快速眼动(NREM)睡眠具有拮抗作用:NREM加速组装漂移,而REM则对抗组装漂移。此外,只有一部分速率变化的锥体细胞促成了漂移,而稳定的放电速率细胞保持了不变的再激活模式。我们的数据表明,长时间的睡眠促进了空间组合的自发重组,这可能有助于日常认知地图的变化或编码新的学习情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sleep stages antagonistically modulate reactivation drift.

Hippocampal reactivation of waking neuronal assemblies in sleep is a key initial step of systems consolidation. Nevertheless, it is unclear whether reactivated assemblies are static or whether they reorganize gradually over prolonged sleep. We tracked reactivated CA1 assembly patterns over ∼20 h of sleep/rest periods and related them to assemblies seen before or after in a spatial learning paradigm using rats. We found that reactivated assembly patterns were gradually transformed and started to resemble those seen in the subsequent recall session. Periods of rapid eye movement (REM) sleep and non-REM (NREM) had antagonistic roles: whereas NREM accelerated the assembly drift, REM countered it. Moreover, only a subset of rate-changing pyramidal cells contributed to the drift, whereas stable-firing-rate cells maintained unaltered reactivation patterns. Our data suggest that prolonged sleep promotes the spontaneous reorganization of spatial assemblies, which can contribute to daily cognitive map changes or encoding new learning situations.

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来源期刊
Neuron
Neuron 医学-神经科学
CiteScore
24.50
自引率
3.10%
发文量
382
审稿时长
1 months
期刊介绍: Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.
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