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Assessment and elimination of the effects of head movement on MEG resting-state measures of oscillatory brain activity

机译:评估和消除头部运动对振荡性脑活动的MEG静止状态测量的影响

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摘要

Magnetoencephalography (MEG) is increasingly being used to study brain function because of its excellent temporal resolution and its direct association with brain activity at the neuronal level. One possible cause of error in the analysis of MEG data comes from the fact that participants, even MEG-experienced ones, move their head in the MEG system. Head movement can cause source localization errors during the analysis of MEG data, which can result in the appearance of source variability that does not reflect brain activity. The MEG community places great importance in eliminating this source of possible errors as is evident, for example, by recent efforts to develop head casts that limit head movement in the MEG system. In this work we use software tools to identify, assess and eliminate from the analysis of MEG data any possible correlations between head movement in the MEG system and widely-used measures of brain activity derived from MEG resting-state recordings. The measures of brain activity we study are a) the Hilbert-transform derived amplitude envelope of the beamformer time series and b) functional networks; both measures derived by MEG resting-state recordings. Ten-minute MEG resting-state recordings were performed on healthy participants, with head position continuously recorded. The sources of the measured magnetic signals were localized via beamformer spatial filtering. Temporal independent component analysis was subsequently used to derive resting-state networks.Significant correlations were observed between the beamformer envelope time series and head movement. The correlations were substantially reduced, and in some cases eliminated, after a participant-specific temporal high-pass filter was applied to those time series. Regressing the head movement metrics out of the beamformer envelope time series had an even stronger effect in reducing these correlations. Correlation trends were also observed between head movement and the activation time series of the default-mode and frontal networks. Regressing the head movement metrics out of the beamformer envelope time series completely eliminated these correlations. Additionally, applying the head movement correction resulted in changes in the network spatial maps for the visual and sensorimotor networks. Our results a) show that the results of MEG resting-state studies that use the above-mentioned analysis methods are confounded by head movement effects, b) suggest that regressing the head movement metrics out of the beamformer envelope time series is a necessary step to be added to these analyses, in order to eliminate the effect that head movement has on the amplitude envelope of beamformer time series and the network time series and c) highlight changes in the connectivity spatial maps when head movement correction is applied.
机译:磁脑描记法(MEG)由于其出色的时间分辨率以及与神经元水平的大脑活动直接相关而越来越多地用于研究脑功能。对MEG数据进行分析的一种可能的错误原因是,即使是有MEG经验的参与者也要在MEG系统中移动头。头部运动可能会在MEG数据分析过程中导致源定位错误,这可能会导致源变化的出现,但不能反映大脑活动。 MEG社区在消除这种可能的错误来源方面非常重要,例如,最近通过开发可限制MEG系统中头部移动的头部石膏的努力,这一点显而易见。在这项工作中,我们使用软件工具从MEG数据的分析中识别,评估和消除MEG系统中的头部运动与源自MEG静止状态记录的脑活动的广泛度量之间的任何可能的相关性。我们研究的大脑活动的度量是:a)希尔伯特变换得出的波束形成器时间序列的幅度包络;以及b)功能网络;两种测量均由MEG静止状态记录导出。对健康的参与者进行十分钟的MEG静息状态记录,并连续记录头部位置。测得的磁信号源通过波束形成器空间滤波进行定位。随后使用时间独立分量分析来推导静止状态网络,并观察到波束形成器包络时间序列与头部运动之间存在显着相关性。在将参与者特定的时间高通滤波器应用于这些时间序列之后,相关性会大大降低,并且在某些情况下会消除。将头部移动量度从波束形成器包络时间序列中移出,在减少这些相关性方面甚至具有更强的作用。还观察到头部运动与默认模式和正面网络的激活时间序列之间的相关趋势。将头部移动量度从波束形成器包络时间序列中移出,可以完全消除这些相关性。另外,应用头部运动校正会导致视觉和感觉运动网络的网络空间图发生变化。我们的结果a)表明使用上述分析方法的MEG静止状态研究的结果与头部运动效应混淆,b)建议将头部运动指标从波束形成器包络时间序列中退出是为了消除磁头移动对波束形成器时间序列和网络时间序列的幅度包络的影响,c)在应用磁头移动校正时突出显示连通性空间图中的变化。

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