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由大脑中昼夜节律的神经活动组成的状态转变的动态特性。

Dynamic Characteristics of State Transitions Composed of Neural Activity in the Brain by Circadian Rhythms.

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2022 Jul;2022:152-157. doi: 10.1109/EMBC48229.2022.9871057.

Abstract

In recent years, as a treatment for mental disorders in addition to drug treatment, a non-drug treatment called chronotherapy has been attracting attention. However, the achievement of optimized chronotherapy for each subject's condition requires that the disturbance of the patient's circadian rhythm must be captured over a long duration. Therefore, it is necessary to develop biomarkers that are easy to measure, quantitative, and continuously measured. Complexity analysis of electroencephalograms revealed specific patterns related to circadian rhythms. However, such complexity analysis cannot capture variability in spatial patterns, although moment-to-moment temporal dynamic characteristics can be captured. Therefore, it is necessary to evaluate the dynamic characteristics of the interaction of neural activity throughout the brain. To evaluate the dynamic whole-brain interaction, we proposed a new microstate approach based on the instantaneous frequency distribution. In this context, we hypothesized that it would be possible to detect circadian rhythms using the microstate approach. In this study, to clarify the dynamic interactions of the entire neural network of the brain by circadian rhythms, we measured EEG data at day and night, and detected dynamic state transitions based on the instantaneous frequency distribution of the whole brain from EEG. The results showed the probability of transition among region-specific phase-leading states related to circadian rhythms. This finding might be widely utilized to detect circadian rhythms in healthy and pathological conditions.

摘要

近年来,作为除药物治疗外治疗精神障碍的一种非药物治疗方法,一种名为时间疗法的方法引起了关注。然而,为每个患者的病情实现优化的时间疗法,需要长时间捕捉患者的昼夜节律紊乱。因此,有必要开发出易于测量、定量和连续测量的生物标志物。脑电图的复杂性分析揭示了与昼夜节律相关的特定模式。然而,这种复杂性分析无法捕捉空间模式的可变性,尽管可以捕捉到瞬间到瞬间的时间动态特征。因此,有必要评估整个大脑中神经活动相互作用的动态特征。为了评估整个大脑的动态相互作用,我们提出了一种基于瞬时频率分布的新微状态方法。在这种情况下,我们假设可以使用微状态方法检测昼夜节律。在这项研究中,为了通过昼夜节律阐明大脑整个神经网络的动态相互作用,我们在白天和晚上测量了 EEG 数据,并基于 EEG 中整个大脑的瞬时频率分布检测动态状态的转变。结果显示了与昼夜节律相关的区域特定相位领先状态之间的转移概率。这一发现可能会广泛应用于检测健康和病理条件下的昼夜节律。

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