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Investigating the Functional Heterogeneity of the Default Mode Network Using Coordinate-Based Meta-Analytic Modeling

机译:使用基于坐标的元分析模型研究默认模式网络的功能异质性

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摘要

The default mode network (DMN) comprises a set of regions that exhibit ongoing, intrinsic activity in the resting state and task-related decreases in activity across a range of paradigms. However, DMN regions have also been reported as task-related increases, either independently or coactivated with other regions in the network. Cognitive subtractions and the use of low-level baseline conditions have generally masked the functional nature of these regions. Using a combination of activation likelihood estimation, which assesses statistically significant convergence of neuroimaging results, and tools distributed with the BrainMap database, we identified core regions in the DMN and examined their functional heterogeneity. Meta-analytic coactivation maps of task-related increases were independently generated for each region, which included both within-DMN and non-DMN connections. Their functional properties were assessed using behavioral domain metadata in BrainMap. These results were integrated to determine a DMN connectivity model that represents the patterns of interactions observed in task-related increases in activity across diverse tasks. Subnetwork components of this model were identified, and behavioral domain analysis of these cliques yielded discrete functional properties, demonstrating that components of the DMN are differentially specialized. Affective and perceptual cliques of the DMN were identified, as well as the cliques associated with a reduced preference for motor processing. In summary, we used advanced coordinate-based meta-analysis techniques to explicate behavior and connectivity in the default mode network; future work will involve applying this analysis strategy to other modes of brain function, such as executive function or sensorimotor systems.
机译:默认模式网络(DMN)包括一组区域,这些区域在静止状态下显示正在进行的内在活动,并且跨范式范围内与任务相关的活动减少。但是,DMN区域也被报告为与任务相关的增加,独立地或与网络中的其他区域共同激活。认知减法和低水平基线条件的使用通常掩盖了这些区域的功能性质。通过结合使用激活可能性估计(评估神经影像结果的统计显着性收敛)和与BrainMap数据库一起分发的工具,我们确定了DMN中的核心区域并检查了它们的功能异质性。针对每个区域独立生成任务相关增加的元分析共激活图,其中包括DMN内部连接和非DMN连接。使用BrainMap中的行为域元数据评估了它们的功能特性。整合这些结果以确定DMN连接性模型,该模型表示跨各种任务的与任务相关的活动增加中观察到的交互模式。确定了该模型的子网组件,并且对这些群体的行为域分析产生了离散的功能特性,这表明DMN的组件是差异化的。识别了DMN的情感和感官集团,以及与降低的马达加工偏好相关的集团。总而言之,我们使用了基于坐标的高级元分析技术来阐明默认模式网络中的行为和连接;未来的工作将涉及将这种分析策略应用于其他脑功能模式,例如执行功能或感觉运动系统。

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