对不同睡眠阶段的自动分类:探索丘脑下核的神经活动模式

IF 2.4 4区 医学 Q3 NEUROSCIENCES
Nathan Barbe, Mark Connolly, Annaelle Devergnas, Napoleon Torrès, Marrio Hervault, Mathieu Bonis, Malvina Billères, Stephan Chabardes, Brigitte Piallat
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引用次数: 0

摘要

睡眠障碍会严重影响生活质量,尤其是患有帕金森病等神经退行性疾病的患者。脑深部刺激的最新进展突出了闭环自适应刺激的潜力,该刺激利用直接从刺激电极记录的神经反馈信号。丘脑下核是一个位于大脑深处的独特结构,在处理皮层信息方面起着重要作用,可以用来划分睡眠阶段。我们记录了两个自由活动的非人灵长类动物在三个晚上的丘脑下核局部场电位。我们的研究使用光谱活动、多尺度熵分析和自动分类来检查不同警觉性阶段的丘脑下神经元活动。结果显示,与睡眠阶段相对应的丘脑底核活动具有不同的频谱模式,在深度睡眠阶段丘脑底核与脑电图信号之间具有高度的同步性。这些更深的阶段也与熵的减少有关,这表明神经活动的复杂性降低了。基于丘脑底核光谱活动的自动机器学习分类器区分清醒和睡眠的准确率很高(两种动物的准确率均为94%)。虽然分类器在深度睡眠阶段表现良好,但在浅睡眠阶段的准确率较低。我们的研究结果表明,丘脑下核的活动可以反映睡眠期间皮层的动态,支持其在开发闭环刺激治疗睡眠障碍方面的潜在用途。这项工作为进一步研究帕金森病模型,评估丘脑下核活动在临床应用中的翻译相关性提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Toward an Automatic Classification of the Different Stages of Sleep: Exploring Patterns of Neural Activity in the Subthalamic Nucleus

Toward an Automatic Classification of the Different Stages of Sleep: Exploring Patterns of Neural Activity in the Subthalamic Nucleus

Sleep disorders substantially impact quality of life, especially in patients with neurodegenerative diseases like Parkinson's disease. Recent advances in deep brain stimulation highlight the potential of closed-loop adaptive stimulation that utilizes neural feedback signals recorded directly from the stimulation electrodes. The subthalamic nucleus, a distinct structure located deep in the brain, plays a major role in processing cortical information and could be used to classify sleep stages. We recorded local field potentials in the subthalamic nucleus of two freely moving nonhuman primates across three nights. Our study examined subthalamic neuronal activity across different vigilance stages using spectral activity, multiscale entropy analysis, and an automatic classification. Results revealed distinct spectral patterns in subthalamic activity corresponding to sleep stages, with a high synchronization between subthalamic nucleus and EEG signals during deeper sleep stages. These deeper stages were associated also with reduced entropy, suggesting decreased neural activity complexity. An automated machine learning classifier based on subthalamic nucleus spectral activity distinguished wakefulness from sleep with high accuracy (94% for both animals). While the classifier performed well for deeper sleep stages, its accuracy was lower for lighter sleep stages. Our findings suggest that subthalamic nucleus activity can mirror cortical dynamics during sleep, supporting its potential use in developing closed-loop stimulation therapies for sleep disorders. This work provides a foundation for further studies in Parkinson's disease models to evaluate the translational relevance of subthalamic nucleus activity in clinical applications.

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来源期刊
European Journal of Neuroscience
European Journal of Neuroscience 医学-神经科学
CiteScore
7.10
自引率
5.90%
发文量
305
审稿时长
3.5 months
期刊介绍: EJN is the journal of FENS and supports the international neuroscientific community by publishing original high quality research articles and reviews in all fields of neuroscience. In addition, to engage with issues that are of interest to the science community, we also publish Editorials, Meetings Reports and Neuro-Opinions on topics that are of current interest in the fields of neuroscience research and training in science. We have recently established a series of ‘Profiles of Women in Neuroscience’. Our goal is to provide a vehicle for publications that further the understanding of the structure and function of the nervous system in both health and disease and to provide a vehicle to engage the neuroscience community. As the official journal of FENS, profits from the journal are re-invested in the neuroscientific community through the activities of FENS.
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