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人类脑电皮质场电位记录的聆听区。

The Listening Zone of Human Electrocorticographic Field Potential Recordings.

机构信息

Vivian L. Smith Department of Neurosurgery, McGovern Medical School, University of Texas Health Houston, Houston, TX 77030.

Texas Institute for Restorative Neurotechnologies, University of Texas Health Science Center at Houston, Houston, TX 77030.

出版信息

eNeuro. 2022 Apr 21;9(2). doi: 10.1523/ENEURO.0492-21.2022. Print 2022 Mar-Apr.

Abstract

Intracranial electroencephalographic (icEEG) recordings provide invaluable insights into neural dynamics in humans because of their unmatched spatiotemporal resolution. Yet, such recordings reflect the combined activity of multiple underlying generators, confounding the ability to resolve spatially distinct neural sources. To empirically quantify the listening zone of icEEG recordings, we computed correlations between signals as a function of distance (full width at half maximum; FWHM) between 8752 recording sites in 71 patients (33 female) implanted with either subdural electrodes (SDEs), stereo-encephalography electrodes (sEEG), or high-density sEEG electrodes. As expected, for both SDEs and sEEGs, higher frequency signals exhibited a sharper fall off relative to lower frequency signals. For broadband high γ (BHG) activity, the mean FWHM of SDEs (6.6 ± 2.5 mm) and sEEGs in gray matter (7.14 ± 1.7 mm) was not significantly different; however, FWHM for low frequencies recorded by sEEGs was 2.45 mm smaller than SDEs. White matter sEEGs showed much lower power for frequencies 17-200 Hz (q < 0.01) and a much broader decay (11.3 ± 3.2 mm) than gray matter electrodes (7.14 ± 1.7 mm). The use of a bipolar referencing scheme significantly lowered FWHM for sEEGs, relative to a white matter reference or a common average reference (CAR). These results outline the influence of array design, spectral bands, and referencing schema on local field potential recordings and source localization in icEEG recordings in humans. The metrics we derive have immediate relevance to the analysis and interpretation of both cognitive and epileptic data.

摘要

颅内脑电图(icEEG)记录提供了对人类神经动力学的宝贵见解,因为它们具有无与伦比的时空分辨率。然而,这种记录反映了多个潜在发生器的组合活动,从而混淆了区分空间上不同神经源的能力。为了从经验上量化 icEEG 记录的收听区域,我们计算了 71 名患者(33 名女性)的 8752 个记录位点之间的信号相关性,这些患者分别植入了硬膜下电极(SDEs)、立体脑电图电极(sEEG)或高密度 sEEG 电极。正如预期的那样,对于 SDE 和 sEEG,高频信号的衰减比低频信号更为陡峭。对于宽带高γ(BHG)活动,SDE 的平均 FWHM(6.6±2.5mm)和灰质 sEEG 的 FWHM(7.14±1.7mm)没有显著差异;然而,sEEG 记录的低频 FWHM 比 SDE 小 2.45mm。白质 sEEG 显示出的频率为 17-200Hz 的功率低得多(q<0.01),衰减也宽得多(11.3±3.2mm),比灰质电极(7.14±1.7mm)宽得多。与白质参考或公共平均参考(CAR)相比,使用双极参考方案会显著降低 sEEG 的 FWHM。这些结果概述了阵列设计、谱带和参考方案对人类 icEEG 记录中局部场电位记录和源定位的影响。我们得出的指标对认知和癫痫数据的分析和解释具有直接的相关性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f90c/9034754/a3ad38f22c90/ENEURO.0492-21.2022_f001.jpg

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