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Adapting parcellation schemes to study fetal brain connectivity in serial imaging studies

机译:调整局部脑脑连通性在串行成像研究中的调整方案

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A crucial step in studying brain connectivity is the definition of the Regions Of Interest (ROI's) which are considered as nodes of a network graph. These ROI's identified in structural imaging reflect consistent functional regions in the anatomies being compared. However in serial studies of the developing fetal brain such functional and associated structural markers are not consistently present over time. In this study we adapt two non-atlas based parcellation schemes to study the development of connectivity networks of a fetal monkey brain using Diffusion Weighted Imaging techniques. Results demonstrate that the fetal brain network exhibits small-world characteristics and a pattern of increased cluster coefficients and decreased global efficiency. These findings may provide a route to creating a new biomarker for healthy fetal brain development.
机译:研究脑连接的关键步骤是感兴趣区域(ROI)的定义,被认为是网络图的节点。这些ROI在结构成像中识别,在比较的解剖中反映了一致的功能区域。然而,在开发的胎儿脑的连续研究中,这种功能性和相关的结构标记并不一直存在。在这项研究中,我们使用扩散加权成像技术来研究两个基于非阿特拉斯的局部局部的局部局部局部局部围脑的开发。结果表明,胎儿脑网络展现出小世界特征和增加的群集系数的模式,并降低了全球效率。这些发现可以提供用于为健康胎儿脑发育产生新的生物标志物的途径。

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