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System-level matching of structural and functional connectomes in the human brain

机译:系统级系统级匹配人脑中的结构和功能互联网

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The brain can be considered as an information processing network, where complex behavior manifests as a result of communication between large-scale functional systems such as visual and default mode networks. As the communication between brain regions occurs through underlying anatomical pathways, it is important to define a "traffic pattern" that properly describes how the regions exchange information. Empirically, the choice of the traffic pattern can be made based on how well the functional connectivity between regions matches the structural pathways equipped with that traffic pattern. In this paper, we present a multimodal connectomics paradigm utilizing graph matching to measure similarity between structural and functional connectomes (derived from dMRI and fMRI data) at node, system, and connectome level. Through an investigation of the brain's structure-function relationship over a large cohort of 641 healthy developmental participants aged 8-22 years, we demonstrate that communicability as the traffic pattern describes the functional connectivity of the brain best, with large-scale systems having significant agreement between their structural and functional connectivity patterns. Notably, matching between structural and functional connectivity for the functionally specialized modular systems such as visual and motor networks are higher as compared to other more integrated systems. Additionally, we show that the negative functional connectivity between the default mode network (DMN) and motor, frontoparietal, attention, and visual networks is significantly associated with its underlying structural connectivity, highlighting the counterbalance between functional activation patterns of DMN and other systems. Finally, we investigated sex difference and developmental changes in brain and observed that similarity between structure and function changes with development.
机译:大脑可以被认为是一个信息处理网络,其中复杂的行为表现为大型功能系统,如视觉和默认模式网络之间的通信的结果。由于脑区域之间的通信通过底层解剖途径发生,因此定义正确描述区域交换信息的“交通模式”非常重要。经验上,可以基于地区之间的功能连通性与配备有该流量模式的结构途径的功能性连接程度如何进行交通模式的选择。在本文中,我们提出了一个多模式连接组学范例利用图形匹配来测量结构和功能connectomes之间的相似性,在节点,系统和连接组级别(从DMRI和fMRI数据导出的)。通过调查大脑的结构功能关系,在8-22岁的641岁的641健康发展参与者中,我们证明了随着交通模式的可通知性描述了大脑的功能性连接,具有重要协议的大规模系统它们之间的结构和功能连接模式。值得注意的是,与其他更多的集成系统相比,诸如视觉和电机网络的功能专用模块化系统的结构和功能连接之间的匹配。此外,我们表明,默认模式网络(DMN)和电机之间的负功能连接,前进,关注和视觉网络之间的潜在结构连通性显着相关,突出了DMN和其他系统功能激活模式之间的平衡。最后,我们调查了大脑的性别差异和发育变化,并观察到结构与功能变化之间的相似性。

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