Spatial Directionality Found in Frontal-Parietal Attentional Networks.

Neuroscience journal Pub Date : 2018-08-30 eCollection Date: 2018-01-01 DOI:10.1155/2018/7879895
Gahangir Hossain, Mark H Myers, Robert Kozma
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引用次数: 2

Abstract

Research in last few years on neurophysiology focused on several areas across the cortex during cognitive processing to determine the dominant direction of electrical activity. However, information about the frequency and direction of episodic synchronization related to higher cognitive functions remain unclear. Our aim was to determine whether neural oscillations carry perceptual information as spatial patterns across the cortex, which could be found in the scalp EEG of human subjects while being engaged in visual sensory stimulation. Magnitude squared coherence of neural activity during task states that "finger movement with Eyes Open (EO) or Eyes Wandering (EW)" among all electrode combinations has the smallest standard deviation and variations. Additionally, the highest coherence among the electrode pairs occurred between alpha (8-12 Hz) and beta (12-16 Hz) ranges. Our results indicate that alpha rhythms seem to be regulated during activities when an individual is focused on a given task. Beta activity, which has also been implicated in cognitive processing to neural oscillations, is seen in our work as a manner to integrate external stimuli to higher cognitive activation. We have found spatial network organization which served to classify the EEG epochs in time with respect to the stimuli class. Our findings suggest that cortical neural signaling utilizes alpha-beta phase coupling during cognitive processing states, where beta activity has been implicated in shifting cognitive states. Significance. Our approach has found frontoparietal attentional mechanisms in shifting brain states which could provide new insights into understanding the global cerebral dynamics of intentional activity and reflect how the brain allocates resources during tasking and cognitive processing states.

Abstract Image

Abstract Image

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在额-顶叶注意网络中发现空间方向性。
近年来的神经生理学研究主要集中在认知过程中大脑皮层的几个区域,以确定脑电活动的主导方向。然而,关于与高级认知功能相关的情景同步的频率和方向的信息仍不清楚。我们的目的是确定神经振荡是否以空间模式在皮层中携带感知信息,这可以在人类受试者在进行视觉感官刺激时的头皮脑电图中发现。任务期间神经活动的幅度平方相干性表明,在所有电极组合中,“睁眼(EO)或眼移(EW)”的手指运动具有最小的标准差和变化。此外,电极对之间的最高相干性发生在α (8-12 Hz)和β (12-16 Hz)范围之间。我们的研究结果表明,当一个人专注于给定的任务时,α节律似乎在活动中受到调节。β活动也与神经振荡的认知处理有关,在我们的工作中被视为将外部刺激整合到更高认知激活的一种方式。我们发现了空间网络组织,可以根据刺激类别对脑电时代进行时间分类。我们的研究结果表明,皮层神经信号在认知处理状态中利用α - β相耦合,其中β活动与认知状态的转移有关。的意义。我们的方法发现了转移大脑状态的额顶叶注意机制,这可以为理解有意活动的整体大脑动态提供新的见解,并反映大脑在任务和认知处理状态下如何分配资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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