Multiplex core of the human brain using structural, functional and metabolic connectivity derived from hybrid PET-MR imaging.

Martijn Devrome, Koen Van Laere, Michel Koole
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Abstract

With the increasing success of mapping brain networks and availability of multiple MR- and PET-based connectivity measures, the need for novel methodologies to unravel the structure and function of the brain at multiple spatial and temporal scales is emerging. Therefore, in this work, we used hybrid PET-MR data of healthy volunteers (n = 67) to identify multiplex core nodes in the human brain. First, monoplex networks of structural, functional and metabolic connectivity were constructed, and consequently combined into a multiplex SC-FC-MC network by linking the same nodes categorically across layers. Taking into account the multiplex nature using a tensorial approach, we identified a set of core nodes in this multiplex network based on a combination of eigentensor centrality and overlapping degree. We introduced a coreness coefficient, which mitigates the effect of modeling parameters to obtain robust results. The proposed methodology was applied onto young and elderly healthy volunteers, where differences observed in the monoplex networks persisted in the multiplex as well. The multiplex core showed a decreased contribution to the default mode and salience network, while an increased contribution to the dorsal attention and somatosensory network was observed in the elderly population. Moreover, a clear distinction in eigentensor centrality was found between young and elderly healthy volunteers.

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利用混合PET-MR成像获得的结构、功能和代谢连接的人脑多重核心。
随着绘制大脑网络的越来越成功,以及多种基于MR和pet的连接测量方法的可用性,需要新的方法来揭示大脑在多个空间和时间尺度上的结构和功能。因此,在这项工作中,我们使用健康志愿者(n = 67)的混合PET-MR数据来识别人脑中的多重核心节点。首先,构建了结构、功能和代谢连接的单路网络,并通过跨层连接相同节点,将其组合成多路SC-FC-MC网络。考虑到使用张量方法的多路性,我们基于特征中心性和重叠度的组合确定了该多路网络中的一组核心节点。我们引入了一个核心系数,减轻了建模参数的影响,以获得鲁棒的结果。所提出的方法被应用于年轻和年老的健康志愿者,其中在单一网络中观察到的差异也持续存在于多重网络中。在老年人中,多重核心对默认模式和突出网络的贡献减少,而对背侧注意和体感网络的贡献增加。此外,年轻和老年健康志愿者在特征中心性上有明显的区别。
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