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睡眠期间海马体表征的重调谐。

Retuning of hippocampal representations during sleep.

机构信息

Dept of Anesthesiology, University of Michigan Medical School, Ann Arbor, MI, USA.

Dept of Psychology, University of Wisconsin-Milwaukee, Milwaukee, WI, USA.

出版信息

Nature. 2024 May;629(8012):630-638. doi: 10.1038/s41586-024-07397-x. Epub 2024 May 8.

Abstract

Hippocampal representations that underlie spatial memory undergo continuous refinement following formation. Here, to track the spatial tuning of neurons dynamically during offline states, we used a new Bayesian learning approach based on the spike-triggered average decoded position in ensemble recordings from freely moving rats. Measuring these tunings, we found spatial representations within hippocampal sharp-wave ripples that were stable for hours during sleep and were strongly aligned with place fields initially observed during maze exploration. These representations were explained by a combination of factors that included preconfigured structure before maze exposure and representations that emerged during θ-oscillations and awake sharp-wave ripples while on the maze, revealing the contribution of these events in forming ensembles. Strikingly, the ripple representations during sleep predicted the future place fields of neurons during re-exposure to the maze, even when those fields deviated from previous place preferences. By contrast, we observed tunings with poor alignment to maze place fields during sleep and rest before maze exposure and in the later stages of sleep. In sum, the new decoding approach allowed us to infer and characterize the stability and retuning of place fields during offline periods, revealing the rapid emergence of representations following new exploration and the role of sleep in the representational dynamics of the hippocampus.

摘要

海马体中的空间记忆表征在形成后会持续不断地得到精细化。在这里,为了在离线状态下实时追踪神经元的空间调谐,我们使用了一种新的贝叶斯学习方法,该方法基于在自由移动大鼠的群体记录中,基于尖峰触发的平均解码位置。通过测量这些调谐,我们发现海马体中的空间表示在睡眠期间的数小时内是稳定的,并且与在迷宫探索期间最初观察到的位置场强烈对齐。这些表示由多种因素共同解释,包括在进入迷宫之前的预配置结构,以及在θ振荡和清醒时的尖峰波期间出现的表示,这揭示了这些事件在形成群体中的贡献。引人注目的是,在睡眠期间的涟漪表示甚至可以预测神经元在重新暴露于迷宫时的未来位置场,即使这些场偏离了之前的位置偏好。相比之下,我们观察到在进入迷宫之前的睡眠和休息期间,以及在睡眠的后期阶段,调谐与迷宫位置场的对齐较差。总的来说,新的解码方法使我们能够推断和描述离线期间位置场的稳定性和重新调谐,揭示了新探索后的表示的快速出现以及睡眠在海马体表示动态中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2dcf/11472358/9d17e98a62ab/nihms-2025976-f0007.jpg

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