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对 TMS 诱发电位中感觉输入的特征和最小化作用进行研究。

Characterizing and minimizing the contribution of sensory inputs to TMS-evoked potentials.

机构信息

Brain, Mind and Society Research Hub, School of Psychological Sciences and Turner Institute for Brain and Mental Health, Monash University, Melbourne, Australia.

Brain, Mind and Society Research Hub, School of Psychological Sciences and Turner Institute for Brain and Mental Health, Monash University, Melbourne, Australia.

出版信息

Brain Stimul. 2019 Nov-Dec;12(6):1537-1552. doi: 10.1016/j.brs.2019.07.009. Epub 2019 Jul 17.

Abstract

BACKGROUND

Transcranial magnetic stimulation (TMS) evokes voltage deflections in electroencephalographic (EEG) recordings, known as TMS-evoked potentials (TEPs), which are increasingly used to study brain dynamics. However, the extent to which TEPs reflect activity directly evoked by magnetic rather than sensory stimulation is unclear.

OBJECTIVE

To characterize and minimize the contribution of sensory inputs to TEPs.

METHODS

Twenty-four healthy participants received TMS over the motor cortex using two different intensities (below and above cortical motor threshold) and waveforms (monophasic, biphasic). TMS was also applied over the shoulder as a multisensory control condition. Common sensory attenuation measures, including coil padding and noise masking, were adopted. We examined spatiotemporal relationships between the EEG responses to the scalp and shoulder stimulations at sensor and source levels. Furthermore, we compared three different filters (independent component analysis, signal-space projection with source informed reconstruction (SSP-SIR) and linear regression) designed to attenuate the impact of sensory inputs on TEPs.

RESULTS

The responses to the scalp and shoulder stimulations were correlated in both temporal and spatial domains, especially after ∼60 ms, regardless of the intensity and stimuli waveform. Among the three filters, SSP-SIR showed the best trade-off between removing sensoryrelated signals while preserving data not related to the control condition.

CONCLUSIONS

The findings demonstrate that TEPs elicited by motor cortex TMS reflect a combination of transcranially and peripherally evoked brain responses despite adopting sensory attenuation methods during experiments, thereby highlighting the importance of adopting sensory control conditions in TMS-EEG studies. Offline filters may help to isolate the transcranial component of the TEP from its peripheral component, but only if these components express different spatiotemporal patterns. More realistic control conditions may help to improve the characterization and attenuation of sensory inputs to TEPs, especially in early responses.

摘要

背景

经颅磁刺激(TMS)在脑电图(EEG)记录中会引起电压偏移,称为 TMS 诱发电位(TEP),它们越来越多地被用于研究大脑动力学。然而,TEP 反映的是磁场而不是感觉刺激直接引起的活动的程度尚不清楚。

目的

描述和最小化感觉输入对 TEP 的贡献。

方法

24 名健康参与者接受了两种不同强度(低于和高于皮质运动阈值)和波形(单相、双相)的运动皮质 TMS 刺激。TMS 也被应用于肩部作为多感觉对照条件。采用了常见的感觉衰减措施,包括线圈衬垫和噪声掩蔽。我们在传感器和源水平上检查了头皮和肩部刺激的 EEG 反应之间的时空关系。此外,我们比较了三种不同的滤波器(独立成分分析、基于源信息重建的信号空间投影(SSP-SIR)和线性回归),旨在减轻感觉输入对 TEP 的影响。

结果

头皮和肩部刺激的反应在时间和空间域都相关,尤其是在 60ms 后,无论刺激强度和波形如何。在三种滤波器中,SSP-SIR 在去除与感觉相关的信号的同时,保持与对照条件无关的数据方面表现出最佳的折衷。

结论

这些发现表明,尽管在实验中采用了感觉衰减方法,但运动皮质 TMS 诱发的 TEP 反映了经颅和外周诱发的脑反应的组合,这强调了在 TMS-EEG 研究中采用感觉对照条件的重要性。离线滤波器可以帮助将 TEP 的经颅成分与其外周成分分离,但前提是这些成分表现出不同的时空模式。更现实的对照条件可能有助于更好地描述和衰减 TEP 中的感觉输入,尤其是在早期反应中。

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