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新生儿大脑的富人俱乐部组织。

Rich-club organization of the newborn human brain.

机构信息

Centre for the Developing Brain, Division of Imaging Sciences and Bioengineering, King's College London, King's Health Partners, St Thomas' Hospital, London SE1 7EH, United Kingdom;

Functional Magnetic Resonance Imaging of the Brain Group, Nuffield Department of Clinical Neuroscience, University of Oxford, Oxford OX3 9DU, United Kingdom;

出版信息

Proc Natl Acad Sci U S A. 2014 May 20;111(20):7456-61. doi: 10.1073/pnas.1324118111. Epub 2014 May 5.

Abstract

Combining diffusion magnetic resonance imaging and network analysis in the adult human brain has identified a set of highly connected cortical hubs that form a "rich club"--a high-cost, high-capacity backbone thought to enable efficient network communication. Rich-club architecture appears to be a persistent feature of the mature mammalian brain, but it is not known when this structure emerges during human development. In this longitudinal study we chart the emergence of structural organization in mid to late gestation. We demonstrate that a rich club of interconnected cortical hubs is already present by 30 wk gestation. Subsequently, until the time of normal birth, the principal development is a proliferation of connections between core hubs and the rest of the brain. We also consider the impact of environmental factors on early network development, and compare term-born neonates to preterm infants at term-equivalent age. Though rich-club organization remains intact following premature birth, we reveal significant disruptions in both in cortical-subcortical connectivity and short-distance corticocortical connections. Rich club organization is present well before the normal time of birth and may provide the fundamental structural architecture for the subsequent emergence of complex neurological functions. Premature exposure to the extrauterine environment is associated with altered network architecture and reduced network capacity, which may in part account for the high prevalence of cognitive problems in preterm infants.

摘要

将弥散磁共振成像和网络分析结合在成人脑中,确定了一组高度连接的皮质中枢,它们形成了一个“丰富俱乐部”——一个高成本、高容量的骨干,被认为可以实现有效的网络通信。丰富俱乐部的结构似乎是成熟哺乳动物大脑的一个持久特征,但目前还不清楚这种结构在人类发育过程中何时出现。在这项纵向研究中,我们描绘了妊娠中期到晚期大脑结构组织的出现。我们证明,到 30 周妊娠时,已经存在一个相互连接的皮质中枢丰富俱乐部。随后,直到正常出生时,主要的发展是核心中枢与大脑其余部分之间连接的增殖。我们还考虑了环境因素对早期网络发展的影响,并将足月出生的新生儿与足月出生时的早产儿进行了比较。尽管早产儿出生后丰富俱乐部的组织仍然完整,但我们发现皮质-皮质下连接和短距离皮质连接都存在显著的中断。丰富俱乐部的组织在正常出生时间之前就已经存在,这可能为随后复杂神经功能的出现提供了基本的结构架构。早产时暴露于子宫外环境与网络结构改变和网络容量减少有关,这可能部分解释了早产儿认知问题高发的原因。

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