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首页> 外文期刊>NeuroImage >Optimized beamforming for simultaneous MEG and intracranial local field potential recordings in deep brain stimulation patients.
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Optimized beamforming for simultaneous MEG and intracranial local field potential recordings in deep brain stimulation patients.

机译:针对深部脑刺激患者同时进行MEG和颅内局部场电位记录的优化波束形成。

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摘要

Insight into how brain structures interact is critical for understanding the principles of functional brain architectures and may lead to better diagnosis and therapy for neuropsychiatric disorders. We recorded, simultaneously, magnetoencephalographic (MEG) signals and subcortical local field potentials (LFP) in a Parkinson's disease (PD) patient with bilateral deep brain stimulation (DBS) electrodes in the subthalamic nucleus (STN). These recordings offer a unique opportunity to characterize interactions between the subcortical structures and the neocortex. However, high-amplitude artefacts appeared in the MEG. These artefacts originated from the percutaneous extension wire, rather than from the actual DBS electrode and were locked to the heart beat. In this work, we show that MEG beamforming is capable of suppressing these artefacts and quantify the optimal regularization required. We demonstrate how beamforming makes it possible to localize cortical regions whose activity is coherent with the STN-LFP, extract artefact-free virtual electrode time-series from regions of interest and localize cortical areas exhibiting specific task-related power changes. This furnishes results that are consistent with previously reported results using artefact-free MEG data. Our findings demonstrate that physiologically meaningful information can be extracted from heavily contaminated MEG signals and pave the way for further analysis of combined MEG-LFP recordings in DBS patients.
机译:深入了解大脑结构如何相互作用对于理解功能性大脑结构的原理至关重要,并且可能导致更好地诊断和治疗神经精神疾病。我们同时在丘脑下核(STN)的双侧深脑刺激(DBS)电极的帕金森氏病(PD)患者中记录了脑磁图(MEG)信号和皮层下局部场电位(LFP)。这些录音提供了独特的机会来表征皮层下结构与新皮层之间的相互作用。但是,MEG中出现了高振幅伪像。这些假象来自经皮延长线,而不是实际的DBS电极,并被锁定在心跳上。在这项工作中,我们表明MEG波束成形能够抑制这些伪像并量化所需的最佳正则化。我们展示了波束成形如何使定位与STN-LFP一致的皮质区域,从感兴趣区域提取无伪像的虚拟电极时间序列以及定位表现出特定任务相关功率变化的皮质区域成为可能。这提供了与先前使用无伪像的MEG数据报告的结果一致的结果。我们的发现表明,可以从严重污染的MEG信号中提取具有生理意义的信息,并为进一步分析DBS患者的MEG-LFP合并记录铺平道路。

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