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海马亚区之间协调的 NREM 睡眠振荡调节人类的突触可塑性。

Coordinated NREM sleep oscillations among hippocampal subfields modulate synaptic plasticity in humans.

机构信息

School of Life Science and Technology, HIT Faculty of Life Science and Medicine, Harbin Institute of Technology, Harbin, 150001, China.

Laboratory for Space Environment and Physical Sciences, Harbin Institute of Technology, Harbin, 150001, China.

出版信息

Commun Biol. 2024 Oct 1;7(1):1236. doi: 10.1038/s42003-024-06941-9.

Abstract

The integration of hippocampal oscillations during non-rapid eye movement (NREM) sleep is crucial for memory consolidation. However, how cardinal sleep oscillations bind across various subfields of the human hippocampus to promote information transfer and synaptic plasticity remains unclear. Using human intracranial recordings from 25 epilepsy patients, we find that hippocampal subfields, including DG/CA3, CA1, and SUB, all exhibit significant delta and spindle power during NREM sleep. The DG/CA3 displays strong coupling between delta and ripple oscillations with all the other hippocampal subfields. In contrast, the regions of CA1 and SUB exhibit more precise coordination, characterized by event-level triple coupling between delta, spindle, and ripple oscillations. Furthermore, we demonstrate that the synaptic plasticity within the hippocampal circuit, as indexed by delta-wave slope, is linearly modulated by spindle power. In contrast, ripples act as a binary switch that triggers a sudden increase in delta-wave slope. Overall, these results suggest that different subfields of the hippocampus regulate one another through diverse layers of sleep oscillation synchronization, collectively facilitating information processing and synaptic plasticity during NREM sleep.

摘要

非快速眼动 (NREM) 睡眠期间海马体振荡的整合对于记忆巩固至关重要。然而,主要的睡眠振荡如何在人类海马体的各个亚区之间绑定,以促进信息传递和突触可塑性尚不清楚。我们使用 25 名癫痫患者的颅内记录发现,海马体的各个亚区,包括 DG/CA3、CA1 和 SUB,在 NREM 睡眠期间都表现出明显的 delta 和纺锤波功率。DG/CA3 与其他所有海马体亚区之间显示出 delta 和涟漪振荡之间的强耦合。相比之下,CA1 和 SUB 区域表现出更精确的协调,其特征是 delta、纺锤和涟漪振荡之间的事件级三重耦合。此外,我们证明,海马体回路内的突触可塑性,以 delta 波斜率为指标,被纺锤波功率线性调节。相比之下,涟漪波充当二进制开关,触发 delta 波斜率的突然增加。总的来说,这些结果表明,海马体的不同亚区通过不同层次的睡眠振荡同步相互调节,共同促进 NREM 睡眠期间的信息处理和突触可塑性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b555/11445409/803fe536c7de/42003_2024_6941_Fig1_HTML.jpg

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