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电极组合中睡眠纺锤波的时空特征及其与慢波振荡的协调关系。

The space-time profiles of sleep spindles and their coordination with slow oscillations on the electrode manifold.

机构信息

Battelle Center for Mathematical Medicine, The Research Institute at Nationwide Children's Hospital, Columbus, OH, USA.

School of Medicine, The Ohio State University, Columbus, OH, USA.

出版信息

Sleep. 2022 Aug 11;45(8). doi: 10.1093/sleep/zsac132.

Abstract

Sleep spindles are important for sleep quality and cognitive functions, with their coordination with slow oscillations (SOs) potentially organizing cross-region reactivation of memory traces. Here, we describe the organization of spindles on the electrode manifold and their relation to SOs. We analyzed the sleep night EEG of 34 subjects and detected spindles and SOs separately at each electrode. We compared spindle properties (frequency, duration, and amplitude) in slow wave sleep (SWS) and Stage 2 sleep (S2); and in spindles that coordinate with SOs or are uncoupled. We identified different topographical spindle types using clustering analysis that grouped together spindles co-detected across electrodes within a short delay (±300 ms). We then analyzed the properties of spindles of each type, and coordination to SOs. We found that SWS spindles are shorter than S2 spindles, and spindles at frontal electrodes have higher frequencies in S2 compared to SWS. Furthermore, S2 spindles closely following an SO (about 10% of all spindles) show faster frequency, shorter duration, and larger amplitude than uncoupled ones. Clustering identified Global, Local, Posterior, Frontal-Right and Left spindle types. At centro-parietal locations, Posterior spindles show faster frequencies compared to other types. Furthermore, the infrequent SO-spindle complexes are preferentially recruiting Global SO waves coupled with fast Posterior spindles. Our results suggest a non-uniform participation of spindles to complexes, especially evident in S2. This suggests the possibility that different mechanisms could initiate an SO-spindle complex compared to SOs and spindles separately. This has implications for understanding the role of SOs-spindle complexes in memory reactivation.

摘要

睡眠纺锤波对睡眠质量和认知功能很重要,其与慢波振荡(SOs)的协调可能组织记忆痕迹的跨区域重新激活。在这里,我们描述了电极排列上的纺锤波的组织及其与 SOs 的关系。我们分析了 34 名受试者的睡眠夜间 EEG,并在每个电极上分别检测到纺锤波和 SOs。我们比较了慢波睡眠(SWS)和阶段 2 睡眠(S2)中的纺锤波特性(频率、持续时间和幅度);以及与 SOs 协调或不耦合的纺锤波。我们使用聚类分析识别了不同的拓扑纺锤波类型,该分析将电极之间在短延迟(±300ms)内共同检测到的纺锤波分组在一起。然后,我们分析了每种类型的纺锤波的特性及其与 SOs 的协调。我们发现 SWS 纺锤波比 S2 纺锤波短,并且 S2 中的额部电极的纺锤波频率比 SWS 高。此外,紧随 SO 之后的 S2 纺锤波(约占所有纺锤波的 10%)的频率更快、持续时间更短、幅度更大。聚类确定了全局、局部、后部、额部-右和左纺锤波类型。在中央-顶叶位置,后部纺锤波的频率比其他类型快。此外,不频繁的 SO-纺锤波复合体优先募集具有快速后部纺锤波的全局 SO 波。我们的结果表明,纺锤波对复合体的参与不均匀,在 S2 中尤为明显。这表明与 SOs 和纺锤波分别相比,可能有不同的机制引发 SO-纺锤波复合体。这对理解 SOs-纺锤波复合体在记忆再激活中的作用具有启示意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b69/9366646/3bd1e46ea78c/zsac132f0005.jpg

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