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Changes in EEG Power Spectral Density and Cortical Connectivity in Healthy and Tetraplegic Patients during a Motor Imagery Task

机译:健康和四肢瘫痪患者运动影像任务期间脑电功率谱密度和皮质连接性的变化

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摘要

Knowledge of brain connectivity is an important aspect of modern neuroscience, to understand how the brain realizes its functions. In this work, neural mass models including four groups of excitatory and inhibitory neurons are used to estimate the connectivity among three cortical regions of interests (ROIs) during a foot-movement task. Real data were obtained via high-resolution scalp EEGs on two populations: healthy volunteers and tetraplegic patients. A 3-shell Boundary Element Model of the head was used to estimate the cortical current density and to derive cortical EEGs in the three ROIs. The model assumes that each ROI can generate an intrinsic rhythm in the beta range, and receives rhythms in the alpha and gamma ranges from other two regions. Connectivity strengths among the ROIs were estimated by means of an original genetic algorithm that tries to minimize several cost functions of the difference between real and model power spectral densities. Results show that the stronger connections are those from the cingulate cortex to the primary and supplementary motor areas, thus emphasizing the pivotal role played by the CMA_L during the task. Tetraplegic patients exhibit higher connectivity strength on average, with significant statistical differences in some connections. The results are commented and virtues and limitations of the proposed method discussed.
机译:了解大脑的连通性是现代神经科学的重要方面,以了解大脑如何实现其功能。在这项工作中,包括四组兴奋性神经元和抑制​​性神经元在内的神经质量模型被用于估计足部运动过程中三个皮质感兴趣区域(ROI)之间的连通性。通过高分辨率头皮脑电图获得了两个人群的真实数据:健康志愿者和四肢瘫痪患者。头部的3壳边界元模型用于估计皮层电流密度并推导三个ROI中的皮层脑电图。该模型假设每个ROI都可以在beta范围内生成固有的节奏,并从其他两个区域接收alpha和gamma范围内的节奏。 ROI之间的连接强度是通过原始遗传算法估算的,该算法试图最小化实际功率谱密度与模型功率谱密度之间差异的若干成本函数。结果表明,从扣带状皮层到主要和辅助运动区域的连接更牢固,从而强调了CMA_L在任务执行过程中所起的关键作用。四肢瘫痪患者平均表现出较高的连接强度,某些连接的统计差异显着。评论了结果,并讨论了所提出方法的优点和局限性。

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