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Fundamentals of sleep regulation: Model and benchmark values for fractal and oscillatory neurodynamics

奥特典节律 神经科学 睡眠(系统调用) 心理学 脑电图 警觉 慢波睡眠 K-络合物 昼夜节律 快速眼动睡眠 睡眠神经科学 睡眠纺锤 生物 计算机科学 操作系统 精神科
作者
Róbert Bódizs,Bence Schneider,Péter P. Ujma,Csenge G. Horváth,Martin Dresler,Yevgenia Rosenblum
出处
期刊:Progress in Neurobiology [Elsevier BV]
卷期号:234: 102589-102589 被引量:18
标识
DOI:10.1016/j.pneurobio.2024.102589
摘要

Homeostatic, circadian and ultradian mechanisms play crucial roles in the regulation of sleep. Evidence suggests that ratios of low-to-high frequency power in the electroencephalogram (EEG) spectrum indicate the instantaneous level of sleep pressure, influenced by factors such as individual sleep-wake history, current sleep stage, age-related differences and brain topography characteristics. These effects are well captured and reflected in the spectral exponent, a composite measure of the constant low-to-high frequency ratio in the periodogram, which is scale-free and exhibits lower interindividual variability compared to slow wave activity, potentially serving as a suitable standardization and reference measure. Here we propose an index of sleep homeostasis based on the spectral exponent, reflecting the level of membrane hyperpolarization and/or network bistability in the central nervous system in humans. In addition, we advance the idea that the U-shaped overnight deceleration of oscillatory slow and fast sleep spindle frequencies marks the biological night, providing somnologists with an EEG-index of circadian sleep regulation. Evidence supporting this assertion comes from studies based on sleep replacement, forced desynchrony protocols and high-resolution analyses of sleep spindles. Finally, ultradian sleep regulatory mechanisms are indicated by the recurrent, abrupt shifts in dominant oscillatory frequencies, with spindle ranges signifying non-rapid eye movement and non-spindle oscillations – rapid eye movement phases of the sleep cycles. Reconsidering the indicators of fundamental sleep regulatory processes in the framework of the new Fractal and Oscillatory Adjustment Model (FOAM) offers an appealing opportunity to bridge the gap between the two-process model of sleep regulation and clinical somnology.
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