Lehnertz Klaus, Rings Thorsten, Bröhl Timo
Department of Epileptology, University of Bonn Medical Centre, Bonn, Germany.
Helmholtz Institute for Radiation and Nuclear Physics, University of Bonn, Bonn, Germany.
Front Netw Physiol. 2021 Sep 27;1:755016. doi: 10.3389/fnetp.2021.755016. eCollection 2021.
Electroencephalography (EEG) is a widely employed tool for exploring brain dynamics and is used extensively in various domains, ranging from clinical diagnosis via neuroscience, cognitive science, cognitive psychology, psychophysiology, neuromarketing, neurolinguistics, and pharmacology to research on brain computer interfaces. EEG is the only technique that enables the continuous recording of brain dynamics over periods of time that range from a few seconds to hours and days and beyond. When taking long-term recordings, various endogenous and exogenous biological rhythms may impinge on characteristics of EEG signals. While the impact of the circadian rhythm and of ultradian rhythms on spectral characteristics of EEG signals has been investigated for more than half a century, only little is known on how biological rhythms influence characteristics of brain dynamics assessed with modern EEG analysis techniques. At the example of multiday, multichannel non-invasive and invasive EEG recordings, we here discuss the impact of biological rhythms on temporal changes of various characteristics of human brain dynamics: higher-order statistical moments and interaction properties of multichannel EEG signals as well as local and global characteristics of EEG-derived evolving functional brain networks. Our findings emphasize the need to take into account the impact of biological rhythms in order to avoid erroneous statements about brain dynamics and about evolving functional brain networks.
脑电图(EEG)是一种广泛用于探索脑动力学的工具,在从临床诊断到神经科学、认知科学、认知心理学、心理生理学、神经营销学、神经语言学和药理学等各个领域都有广泛应用,还用于脑机接口研究。EEG是唯一能够在几秒到数小时、数天甚至更长时间内持续记录脑动力学的技术。在进行长期记录时,各种内源性和外源性生物节律可能会影响EEG信号的特征。虽然昼夜节律和超日节律对EEG信号频谱特征的影响已经研究了半个多世纪,但对于生物节律如何影响用现代EEG分析技术评估的脑动力学特征却知之甚少。以多日、多通道非侵入性和侵入性EEG记录为例,我们在此讨论生物节律对人类脑动力学各种特征随时间变化的影响:多通道EEG信号的高阶统计矩和相互作用特性,以及EEG衍生的不断演变的功能性脑网络的局部和全局特征。我们的研究结果强调,需要考虑生物节律的影响,以避免对脑动力学和不断演变的功能性脑网络做出错误论断。