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Linear distributed source modeling of local field potentials recorded with intra-cortical electrode arrays

机译:皮质内电极阵列记录的局部场电位的线性分布式源建模

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摘要

Planar intra-cortical electrode (Utah) arrays provide a unique window into the spatial organization of cortical activity. Reconstruction of the current source density (CSD) underlying such recordings, however, requires “inverting” Poisson’s equation. For inter-laminar recordings, this is commonly done by the CSD method, which consists in taking the second-order spatial derivative of the recorded local field potentials (LFPs). Although the CSD method has been tremendously successful in mapping the current generators underlying inter-laminar LFPs, its application to planar recordings is more challenging. While for inter-laminar recordings the CSD method seems reasonably robust against violations of its assumptions, is it unclear as to what extent this holds for planar recordings. One of the objectives of this study is to characterize the conditions under which the CSD method can be successfully applied to Utah array data. Using forward modeling, we find that for spatially coherent CSDs, the CSD method yields inaccurate reconstructions due to volume-conducted contamination from currents in deeper cortical layers. An alternative approach is to “invert” a constructed forward model. The advantage of this approach is that any a priori knowledge about the geometrical and electrical properties of the tissue can be taken into account. Although several inverse methods have been proposed for LFP data, the applicability of existing electroencephalographic (EEG) and magnetoencephalographic (MEG) inverse methods to LFP data is largely unexplored. Another objective of our study therefore, is to assess the applicability of the most commonly used EEG/MEG inverse methods to Utah array data. Our main conclusion is that these inverse methods provide more accurate CSD reconstructions than the CSD method. We illustrate the inverse methods using event-related potentials recorded from primary visual cortex of a macaque monkey during a motion discrimination task.
机译:平面皮质内电极(Utah)阵列为了解皮质活动的空间组织提供了独特的窗口。然而,重建此类记录所依据的电流源密度(CSD),需要“逆转”泊松方程。对于层间记录,这通常是通过CSD方法完成的,该方法包括获取已记录局部场电势(LFP)的二阶空间导数。尽管CSD方法在映射层间LFP下方的电流发生器方面已经取得了巨大的成功,但其在平面记录中的应用却更具挑战性。尽管对于层间记录而言,CSD方法在抵制违反其假设方面似乎具有相当强的鲁棒性,但尚不清楚其在多大程度上适用于平面记录。这项研究的目的之一是表征可将CSD方法成功应用于犹他州阵列数据的条件。使用正向建模,我们发现对于空间相干的CSD,CSD方法由于来自较深皮质层中电流的体积传导污染而产生不正确的重建。一种替代方法是“反转”已构建的正向模型。该方法的优点在于,可以考虑关于组织的几何和电特性的任何先验知识。尽管已经提出了几种针对LFP数据的逆方法,但是,目前还没有充分研究现有的脑电图(EEG)和磁脑电图(MEG)逆方法对LFP数据的适用性。因此,我们研究的另一个目标是评估最常用的EEG / MEG反方法对犹他州阵列数据的适用性。我们的主要结论是,与CSD方法相比,这些逆方法提供了更准确的CSD重构。我们说明了使用从运动猕猴的主要视觉皮层记录的事件相关电位的逆运动方法,该运动相关电位是在运动识别任务中进行的。

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