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Neuronal dynamics enable the functional differentiation of resting state networks in the human brain

机译:神经元动力学使人脑中休息状态网络的功能分化能够实现

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Abstract Intrinsic brain activity is organized in spatial–temporal patterns, called resting‐state networks (RSNs), exhibiting specific structural–functional architecture. These networks presumably reflect complex neurophysiological processes and have a central role in distinct perceptual and cognitive functions. In this work, we propose an innovative approach for characterizing RSNs according to their underlying neural oscillations. We investigated specific electrophysiological properties, including spectral features, fractal dimension, and entropy, associated with eight core RSNs derived from high‐density electroencephalography (EEG) source‐reconstructed signals. Specifically, we found higher synchronization of the gamma‐band activity and higher fractal dimension values in perceptual (PNs) compared with higher cognitive (HCNs) networks. The inspection of this underlying rapid activity becomes of utmost importance for assessing possible alterations related to specific brain disorders. The disruption of the coordinated activity of RSNs may result in altered behavioral and perceptual states. Thus, this approach could potentially be used for the early detection and treatment of neurological disorders.
机译:摘要本征大脑活动是以空间 - 时间模式组织的,称为休息状态网络(RSNS),表现出特定的结构功能架构。这些网络可能反映复杂的神经生理过程,并在不同的感知和认知功能中具有核心作用。在这项工作中,我们提出了一种根据其底层神经振荡来表征RSN的创新方法。我们研究了特定的电生理学特性,包括光谱特征,分形尺寸和熵,与八个核心RSN相关联,该载体来自高密度脑电图(EEG)源重建信号。具体地,与较高的认知(HCNS)网络相比,我们发现伽马带活动和较高分数维值的伽马带活动和较高分数维值的同步。这种潜在的快速活动的检查是评估与特定脑障碍相关的可能改变的最重要的。 RSNS的协调活动的破坏可能导致发生改变的行为和感知状态。因此,这种方法可能用于早期检测和治疗神经疾病。

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