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Dependency Network Analysis (DEPNA) Reveals Context Related Influence of Brain Network Nodes

机译:依赖网络分析(DEPNA)揭示了脑网络节点的上下文相关影响

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摘要

Communication between and within brain regions is essential for information processing within functional networks. The current methods to determine the influence of one region on another are either based on temporal resolution, or require a predefined model for the connectivity direction. However these requirements are not always achieved, especially in fMRI studies, which have poor temporal resolution. We thus propose a new graph theory approach that focuses on the correlation influence between selected brain regions, entitled Dependency Network Analysis (DEPNA). Partial correlations are used to quantify the level of influence of each node during task performance. As a proof of concept, we conducted the DEPNA on simulated datasets and on two empirical motor and working memory fMRI tasks. The simulations revealed that the DEPNA correctly captures the network's hierarchy of influence. Applying DEPNA to the functional tasks reveals the dynamics between specific nodes as would be expected from prior knowledge. To conclude, we demonstrate that DEPNA can capture the most influencing nodes in the network, as they emerge during specific cognitive processes. This ability opens a new horizon for example in delineating critical nodes for specific clinical interventions.
机译:大脑区域之间的通信对于功能网络中的信息处理至关重要。确定一个区域对另一个区域的影响的当前方法是基于时间分辨率,或者需要用于连接方向的预定义模型。然而,这些要求并不总是实现,尤其是在FMRI研究中,其暂时分辨率差。因此,我们提出了一种新的图形理论方法,专注于所选脑区之间的相关影响,题为依赖网络分析(DEPNA)。部分相关性用于量化任务性能期间每个节点的影响水平。作为概念证明,我们在模拟数据集和两个经验电动机上进行了DEPNA和工作记忆FMRI任务。模拟显示,DEPNA正确地捕获网络的影响层次。将DEPNA应用于功能任务,显示特定节点之间的动态,如先前知识所期望的那样。为了得出结论,由于在特定的认知过程中,我们证明DEPNA可以捕获网络中最大的影响节点。这种能力打开了一个新的地平线,例如在划定特定临床干预的关键节点中。

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