Propofol Reversibly Attenuates Short-Range Microstate Ordering and 20 Hz Microstate Oscillations.

IF 2.9 3区 医学 Q3 CLINICAL NEUROLOGY Brain Topography Pub Date : 2024-03-01 Epub Date: 2024-01-16 DOI:10.1007/s10548-023-01023-1
Gesine Hermann, Inken Tödt, Enzo Tagliazucchi, Inga Karin Todtenhaupt, Helmut Laufs, Frederic von Wegner
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Abstract

Microstate sequences summarize the changing voltage patterns measured by electroencephalography, using a clustering approach to reduce the high dimensionality of the underlying data. A common approach is to restrict the pattern matching step to local maxima of the global field power (GFP) and to interpolate the microstate fit in between. In this study, we investigate how the anesthetic propofol affects microstate sequence periodicity and predictability, and how these metrics are changed by interpolation. We performed two frequency analyses on microstate sequences, one based on time-lagged mutual information, the other based on Fourier transform methodology, and quantified the effects of interpolation. Resting-state microstate sequences had a 20 Hz frequency peak related to dominant 10 Hz (alpha) rhythms, and the Fourier approach demonstrated that all five microstate classes followed this frequency. The 20 Hz periodicity was reversibly attenuated under moderate propofol sedation, as shown by mutual information and Fourier analysis. Characteristic microstate frequencies could only be observed in non-interpolated microstate sequences and were masked by smoothing effects of interpolation. Information-theoretic analysis revealed faster microstate dynamics and larger entropy rates under propofol, whereas Shannon entropy did not change significantly. In moderate sedation, active information storage decreased for non-interpolated sequences. Signatures of non-equilibrium dynamics were observed in non-interpolated sequences, but no changes were observed between sedation levels. All changes occurred while subjects were able to perform an auditory perception task. In summary, we show that low dose propofol reversibly increases the randomness of microstate sequences and attenuates microstate oscillations without correlation to cognitive task performance. Microstate dynamics between GFP peaks reflect physiological processes that are not accessible in interpolated sequences.

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丙泊酚可逆地减弱短程微状态有序化和 20 赫兹微状态振荡。
微状态序列总结了脑电图测量到的电压变化模式,使用聚类方法来降低基础数据的高维度。一种常见的方法是将模式匹配步骤限制在全场功率(GFP)的局部最大值,并在两者之间插入微状态拟合。在本研究中,我们研究了麻醉剂异丙酚如何影响微状态序列的周期性和可预测性,以及插值如何改变这些指标。我们对微态序列进行了两种频率分析,一种基于时滞互信息,另一种基于傅立叶变换方法,并量化了插值的影响。静息状态微状态序列有一个 20 赫兹的频率峰值,与主导的 10 赫兹(α)节律有关,傅立叶方法表明所有五个微状态类别都遵循这一频率。互信息和傅立叶分析表明,在中度异丙酚镇静作用下,20 赫兹的周期性会可逆地减弱。只有在非插值微状态序列中才能观察到特征性微状态频率,插值的平滑效应掩盖了这一频率。信息理论分析表明,在异丙酚作用下,微状态动态变化更快,熵率更大,而香农熵没有显著变化。在中度镇静状态下,非插值序列的主动信息存储减少。在非插值序列中观察到了非平衡动态的特征,但在不同镇静水平之间没有观察到变化。所有变化都是在受试者能够完成听觉感知任务时发生的。总之,我们的研究表明,低剂量异丙酚可逆地增加微状态序列的随机性并减弱微状态振荡,但与认知任务的表现无关。GFP 峰值之间的微状态动态反映了插值序列中无法获得的生理过程。
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来源期刊
Brain Topography
Brain Topography 医学-临床神经学
CiteScore
4.70
自引率
7.40%
发文量
41
审稿时长
3 months
期刊介绍: Brain Topography publishes clinical and basic research on cognitive neuroscience and functional neurophysiology using the full range of imaging techniques including EEG, MEG, fMRI, TMS, diffusion imaging, spectroscopy, intracranial recordings, lesion studies, and related methods. Submissions combining multiple techniques are particularly encouraged, as well as reports of new and innovative methodologies.
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