Ball G, Aljabar P, Arichi T, Tusor N, Cox D, Merchant N, Nongena P, Hajnal J V, Edwards A D, Counsell S J
Centre for the Developing Brain, Division of Imaging Sciences & Biomedical Engineering, King's College London, London, United Kingdom.
Centre for the Developing Brain, Division of Imaging Sciences & Biomedical Engineering, King's College London, London, United Kingdom.
Neuroimage. 2016 Jan 1;124(Pt A):267-275. doi: 10.1016/j.neuroimage.2015.08.055. Epub 2015 Sep 2.
Brain development is adversely affected by preterm birth. Magnetic resonance image analysis has revealed a complex fusion of structural alterations across all tissue compartments that are apparent by term-equivalent age, persistent into adolescence and adulthood, and associated with wide-ranging neurodevelopment disorders. Although functional MRI has revealed the relatively advanced organisational state of the neonatal brain, the full extent and nature of functional disruptions following preterm birth remain unclear. In this study, we apply machine-learning methods to compare whole-brain functional connectivity in preterm infants at term-equivalent age and healthy term-born neonates in order to test the hypothesis that preterm birth results in specific alterations to functional connectivity by term-equivalent age. Functional connectivity networks were estimated in 105 preterm infants and 26 term controls using group-independent component analysis and a graphical lasso model. A random forest-based feature selection method was used to identify discriminative edges within each network and a nonlinear support vector machine was used to classify subjects based on functional connectivity alone. We achieved 80% cross-validated classification accuracy informed by a small set of discriminative edges. These edges connected a number of functional nodes in subcortical and cortical grey matter, and most were stronger in term neonates compared to those born preterm. Half of the discriminative edges connected one or more nodes within the basal ganglia. These results demonstrate that functional connectivity in the preterm brain is significantly altered by term-equivalent age, confirming previous reports of altered connectivity between subcortical structures and higher-level association cortex following preterm birth.
早产会对大脑发育产生不利影响。磁共振图像分析显示,在所有组织区域都存在复杂的结构改变融合,这些改变在足月等效年龄时就很明显,持续到青春期和成年期,并与广泛的神经发育障碍相关。尽管功能磁共振成像揭示了新生儿大脑相对先进的组织状态,但早产后脑功能破坏的全部程度和性质仍不清楚。在本研究中,我们应用机器学习方法比较足月等效年龄的早产儿和足月健康新生儿的全脑功能连接,以检验早产会导致足月等效年龄时功能连接发生特定改变这一假设。使用组独立成分分析和图形拉索模型对105名早产儿和26名足月对照者的功能连接网络进行了估计。基于随机森林的特征选择方法用于识别每个网络内的判别性边,非线性支持向量机用于仅基于功能连接对受试者进行分类。通过一小部分判别性边,我们实现了80%的交叉验证分类准确率。这些边连接了皮质下和皮质灰质中的多个功能节点,并且与早产儿相比,足月新生儿中的大多数边更强。一半的判别性边连接了基底神经节内的一个或多个节点。这些结果表明,早产儿大脑的功能连接在足月等效年龄时发生了显著改变,证实了先前关于早产后皮质下结构与高级联合皮质之间连接改变的报道。