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基于功能连接推导的胎儿脑网络成熟度最佳孕周切点

Functional Connectivity-Derived Optimal Gestational-Age Cut Points for Fetal Brain Network Maturity.

作者信息

De Asis-Cruz Josepheen, Barnett Scott Douglas, Kim Jung-Hoon, Limperopoulos Catherine

机构信息

Developing Brain Institute, Children's National, Washington, DC 20010, USA.

出版信息

Brain Sci. 2021 Jul 12;11(7):921. doi: 10.3390/brainsci11070921.

Abstract

The architecture of the human connectome changes with brain maturation. Pivotal to understanding these changes is defining developmental periods when transitions in network topology occur. Here, using 110 resting-state functional connectivity data sets from healthy fetuses between 19 and 40 gestational weeks, we estimated optimal gestational-age (GA) cut points for dichotomizing fetuses into 'young' and 'old' groups based on global network features. We computed the small-world index, normalized clustering and path length, global and local efficiency, and modularity from connectivity matrices comprised 200 regions and their corresponding pairwise connectivity. We modeled the effect of GA at scan on each metric using separate repeated-measures generalized estimating equations. Our modeling strategy involved stratifying fetuses into 'young' and 'old' based on the scan occurring before or after a selected GA (i.e., 28 to 33). We then used the quasi-likelihood independence criterion statistic to compare model fit between 'old' and 'young' cohorts and determine optimal cut points for each graph metric. Trends for all metrics, except for global efficiency, decreased with increasing gestational age. Optimal cut points fell within 30-31 weeks for all metrics coinciding with developmental events that include a shift from endogenous neuronal activity to sensory-driven cortical patterns.

摘要

人类连接组的结构随大脑成熟而变化。理解这些变化的关键在于确定网络拓扑发生转变的发育时期。在此,我们使用了来自19至40孕周健康胎儿的110个静息态功能连接数据集,基于全局网络特征估计了将胎儿分为“年轻”和“年老”组的最佳孕周(GA)切点。我们从包含200个区域及其相应成对连接性的连接矩阵中计算了小世界指数、归一化聚类和路径长度、全局和局部效率以及模块性。我们使用单独的重复测量广义估计方程对扫描时的GA对每个指标的影响进行建模。我们的建模策略包括根据在选定的GA(即28至33周)之前或之后进行的扫描将胎儿分为“年轻”和“年老”组。然后,我们使用拟似然独立性标准统计量来比较“年老”和“年轻”队列之间的模型拟合,并确定每个图形指标的最佳切点。除全局效率外,所有指标的趋势均随孕周增加而下降。所有指标的最佳切点都在30至31周之间,这与包括从内源性神经元活动向感觉驱动的皮质模式转变在内的发育事件相吻合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0bb/8304646/24038ff77a07/brainsci-11-00921-g001.jpg

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