7T时的皮质层EEG-fMRI:实验设置和分析管道,以阐明α振荡的产生机制。

Daniel C Marsh, Rodika Sokoliuk, Kevin M Aquino, Daisie O Pakenham, Ross Wilson, Rosa Sanchez Panchuelo, Matthew J Brookes, Simon Hanslmayr, Stephen D Mayhew, Susan T Francis, Karen J Mullinger
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引用次数: 0

摘要

α波段(8-13Hz)脑电图(EEG)振荡在认知中起着关键作用,但其产生机制仍知之甚少。研究α振荡的层流起源的大多数研究都是在动物身上进行的,使用侵入性颅内记录。为了将这些发现与人类α的产生联系起来,需要开发非侵入性技术。超高场(UHF, 7T)的层功能磁共振成像(fMRI)允许对大脑皮层深度的反应进行询问,并结合同步脑电图,为获得人类α产生机制的新见解提供了机会。这项工作建立了一个框架,以研究无创电生理信号的产生机制,同时使用脑电图层-功能磁共振成像。在闭眼/睁眼模式下获得10名参与者的数据。我们发现,在9/10的参与者中,脑电图和血氧水平依赖(BOLD)功能磁共振成像数据的质量足以观察到脑电图α功率与视觉皮层灰质中睁眼/闭眼任务的BOLD信号之间存在显著的负相关。“Deveining”是为了克服由于静脉引流导致的脑皮层表面BOLD信号的增加,并且研究了Deveining分析中每个步骤对α -BOLD负相关的皮质深度剖面的影响。最大的效果依赖于排除静脉周围组织中的体素。开发后,皮层深度剖面显示,与深层和浅层深度相比,中间深度的α - bold负相关显著减弱。当使用盒子而不是脑电图的阿尔法功率来模拟任务时,这种深度依赖性没有被观察到,这表明这是自发的阿尔法功率调制所特有的。总之,我们已经建立了一种无创询问电生理信号起源的方法。我们的alpha- bold深度分析表明,睁眼和闭眼任务的alpha信号是在表层和深层产生的,表明是自上而下的过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cortical-layer EEG-fMRI at 7T: experimental setup and analysis pipeline to elucidate generating mechanisms of alpha oscillations.

Cortical-layer EEG-fMRI at 7T: experimental setup and analysis pipeline to elucidate generating mechanisms of alpha oscillations.

Cortical-layer EEG-fMRI at 7T: experimental setup and analysis pipeline to elucidate generating mechanisms of alpha oscillations.

Cortical-layer EEG-fMRI at 7T: experimental setup and analysis pipeline to elucidate generating mechanisms of alpha oscillations.

Alpha band (8-13Hz) electroencephalography (EEG) oscillations play a key role in cognition, but their generating mechanisms are still poorly understood. Most studies investigating laminar origins of alpha oscillations have been conducted on animals using invasive intracranial recordings. To relate these findings to human alpha generation, non-invasive techniques need to be developed. Layer functional Magnetic Resonance Imaging (fMRI) at ultra-high field (UHF, 7T) allows for the interrogation of brain responses across cortical depths and combined with simultaneous EEG, provides the opportunity to gain new insight into human alpha generation mechanisms. This work establishes a framework to study the generating mechanisms of electrophysiological signals non-invasively in humans using simultaneous EEG layer-fMRI. Data were acquired on 10 participants during an eyes closed/eyes open paradigm. We showed that in 9/10 participants the quality of EEG and Blood Oxygenation Level Dependent (BOLD) fMRI data were sufficient to observe a significant negative correlation between EEG alpha power and the BOLD signal in visual cortex grey matter to the eyes open/eyes closed task. "Deveining" was performed to overcome the increase in BOLD signal toward the pial surface due to draining veins, and the effects of each of the steps in the deveining analysis on the cortical depth profiles of the negative alpha-BOLD correlations studied. The largest effect was dependent on the exclusion of voxels in the tissue immediately surrounding veins. Following deveining, the cortical depth profiles showed the negative alpha-BOLD correlations were significantly weaker in the middle depths compared with deep and superficial depths. When a boxcar rather than EEG alpha power was used to model the task, this depth-dependence was not seen, suggesting this was specific to spontaneous alpha-power modulations. In conclusion, we have established a method to non-invasively interrogate the origins of electrophysiological signals. Our alpha-BOLD depth profiles suggest the alpha signal to an eyes open-closed task is generated in superficial and deep layers suggesting top-down processes.

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