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在多源干扰任务中,灵活的脑区转换发生在与认知表现相关的层次网络分离和整合之间。

Flexible Brain Transitions Between Hierarchical Network Segregation and Integration Associated With Cognitive Performance During a Multisource Interference Task.

作者信息

Wang Rong, Su Xiaoli, Chang Zhao, Lin Pan, Wu Ying

出版信息

IEEE J Biomed Health Inform. 2022 Apr;26(4):1835-1846. doi: 10.1109/JBHI.2021.3119940. Epub 2022 Apr 14.

DOI:10.1109/JBHI.2021.3119940
PMID:34648461
Abstract

Cognition involves locally segregated and globally integrated processing. This process is hierarchically organized and linked to evidence from hierarchical modules in brain networks. However, researchers have not clearly determined how flexible transitions between these hierarchical processes are associated with cognitive performance. Here, we designed a multisource interference task (MSIT) and introduced the nested-spectral partition (NSP) method to detect hierarchical modules in brain functional networks. By defining hierarchical segregation and integration across multiple levels, we showed that the MSIT requires higher network segregation in the whole brain and most functional systems but generates higher integration in the control system. Meanwhile, brain networks have more flexible transitions between segregated and integrated configurations in the task state. Crucially, higher functional flexibility in the resting state, less flexibility in the task state and more efficient switching of the brain from resting to task states were associated with better task performance. Our hierarchical modular analysis was more effective at detecting alterations in functional organization and the phenotype of cognitive performance than graph-based network measures at a single level.

摘要

认知涉及局部隔离和全局整合的处理。这一过程是分层组织的,并与来自脑网络分层模块的证据相关联。然而,研究人员尚未明确确定这些分层过程之间的灵活转换如何与认知表现相关。在此,我们设计了一个多源干扰任务(MSIT),并引入了嵌套谱划分(NSP)方法来检测脑功能网络中的分层模块。通过定义多个层次上的分层隔离和整合,我们表明MSIT在全脑和大多数功能系统中需要更高的网络隔离,但在控制系统中产生更高的整合。同时,脑网络在任务状态下的隔离和整合配置之间具有更灵活的转换。至关重要的是,静息状态下更高的功能灵活性、任务状态下较低的灵活性以及大脑从静息状态到任务状态的更有效切换与更好的任务表现相关。我们的分层模块化分析在检测功能组织的改变和认知表现的表型方面比基于图的单一层面网络测量更有效。

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