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Use of a neural mass model for the analysis of effective connectivity among cortical regions based on high resolution EEG recordings

机译:使用神经质量模型基于高分辨率EEG记录分析皮质区域之间的有效连通性

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摘要

Assessment of brain connectivity among different brain areas during cognitive or motor tasks is a crucial problem in neuroscience today. Aim of this work is to use a neural mass model to assess the effect of various connectivity patterns in cortical electroencephalogram (EEG) power spectral density, and investigate the possibility to derive connectivity circuits from EEG data. To this end, a model of an individual region of interest (ROI) has been built as the parallel arrangement of three populations, each described as in Wendling et al. (Eur J Neurosci 15:1499–1508, 2002). Connectivity among ROIs includes three parameters, which specify the strength of connection in the different frequency bands. The following main steps have been followed: (1) we analyzed how the power spectral density (PSD) is significantly modified by the kind of coupling hypothesized among the ROIs; (2) with the model, and using an automatic fitting procedure, we looked for a simple connectivity circuit able to reproduce PSD of cortical EEG in three ROIs during a finger-movement task. The estimated parameters represent the strength of connections among the ROIs in the different frequency bands. Cortical EEGs were computed with an inverse propagation algorithm, starting from measurement performed with 96 electrodes on the scalp. The present study suggests that the model can be used as a simulation tool, able to mimic the effect of connectivity on EEG. Moreover, it can be used to look for simple connectivity circuits, able to explain the main features of observed cortical PSD. These results may open new prospectives in the use of neurophysiological models, instead of empirical models, to assess effective connectivity from neuroimaging information.
机译:在当今的神经科学中,评估认知或运动任务期间不同大脑区域之间的大脑连通性是一个关键问题。这项工作的目的是使用神经质量模型来评估各种连接模式对皮层脑电图(EEG)功率谱密度的影响,并研究从EEG数据导出连接电路的可能性。为此,已经建立了一个感兴趣区域(ROI)的模型,将其作为三个种群的平行排列,每个种群的描述都在Wendling等人的文章中。 (Eur J Neurosci 15:1499-1508,2002)。 ROI之间的连接性包括三个参数,这些参数指定了不同频段的连接强度。遵循了以下主要步骤:(1)我们分析了如何通过ROI之间假设的耦合类型显着修改功率谱密度(PSD); (2)使用该模型并使用自动拟合程序,我们寻找了一种简单的连接电路,该电路在手指移动任务期间能够在三个ROI中重现皮质EEG的PSD。估计的参数表示不同频带中ROI之间的连接强度。用反向传播算法计算皮层脑电图,从在头皮上用96个电极进行测量开始。本研究表明该模型可以用作模拟工具,能够模拟连接对EEG的影响。而且,它可以用来寻找简单的连通性电路,能够解释观察到的皮质PSD的主要特征。这些结果可能会为使用神经生理学模型(而非经验模型)评估神经影像信息的有效连通性开辟新的前景。

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  • 来源
    《Biological Cybernetics》 |2007年第3期|351-365|共15页
  • 作者单位

    Department of Electronics Computer Science and Systems University of Bologna viale Risorgimento 2 40136 Bologna Cesena Italy;

    Department of Electronics Computer Science and Systems University of Bologna viale Risorgimento 2 40136 Bologna Cesena Italy;

    Department of Human Physiology and Pharmacology University of Rome “La Sapienza” Roma Italy;

    Department of Human Physiology and Pharmacology University of Rome “La Sapienza” Roma Italy;

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