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神经复杂性是人类意识在不同皮质动力学状态下的共同特征。

Neural complexity is a common denominator of human consciousness across diverse regimes of cortical dynamics.

机构信息

Department of Psychology, University of California Los Angeles, 90095, Pritzker Hall, Los Angeles, CA, USA.

Institute for Neuromodulation and Neurotechnology, University Hospital and University of Tuebingen, Tuebingen, Germany.

出版信息

Commun Biol. 2022 Dec 15;5(1):1374. doi: 10.1038/s42003-022-04331-7.

Abstract

What is the common denominator of consciousness across divergent regimes of cortical dynamics? Does consciousness show itself in decibels or in bits? To address these questions, we introduce a testbed for evaluating electroencephalogram (EEG) biomarkers of consciousness using dissociations between neural oscillations and consciousness caused by rare genetic disorders. Children with Angelman syndrome (AS) exhibit sleep-like neural dynamics during wakefulness. Conversely, children with duplication 15q11.2-13.1 syndrome (Dup15q) exhibit wake-like neural dynamics during non-rapid eye movement (NREM) sleep. To identify highly generalizable biomarkers of consciousness, we trained regularized logistic regression classifiers on EEG data from wakefulness and NREM sleep in children with AS using both entropy measures of neural complexity and spectral (i.e., neural oscillatory) EEG features. For each set of features, we then validated these classifiers using EEG from neurotypical (NT) children and abnormal EEGs from children with Dup15q. Our results show that the classification performance of entropy-based EEG biomarkers of conscious state is not upper-bounded by that of spectral EEG features, which are outperformed by entropy features. Entropy-based biomarkers of consciousness may thus be highly adaptable and should be investigated further in situations where spectral EEG features have shown limited success, such as detecting covert consciousness or anesthesia awareness.

摘要

意识在皮质动力学不同状态下的共同特征是什么?意识是通过分贝还是比特来表现?为了解决这些问题,我们引入了一个测试平台,使用由罕见遗传疾病引起的神经振荡与意识之间的分离来评估脑电图(EEG)意识生物标志物。患有 Angelman 综合征(AS)的儿童在清醒时表现出类似睡眠的神经动力学。相反,患有 15q11.2-13.1 号染色体重复综合征(Dup15q)的儿童在非快速眼动(NREM)睡眠期间表现出类似清醒的神经动力学。为了确定具有高度可推广性的意识生物标志物,我们使用神经复杂性的熵度量和频谱(即神经振荡)EEG 特征,对患有 AS 的儿童在清醒和 NREM 睡眠期间的 EEG 数据进行正则逻辑回归分类器训练。对于每组特征,我们使用来自神经典型(NT)儿童的 EEG 和 Dup15q 儿童的异常 EEG 来验证这些分类器。我们的结果表明,基于熵的 EEG 意识状态生物标志物的分类性能不受频谱 EEG 特征的限制,而频谱 EEG 特征的性能优于熵特征。因此,基于熵的意识生物标志物可能具有高度适应性,并且应该在频谱 EEG 特征显示出有限成功的情况下进一步研究,例如检测隐匿意识或麻醉意识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c8d/9755290/f055a6e6d62b/42003_2022_4331_Fig1_HTML.jpg

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