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人类前额叶皮层转录的时空动态和遗传控制。

Temporal dynamics and genetic control of transcription in the human prefrontal cortex.

机构信息

Section on Neuropathology, Clinical Brain Disorders Branch, Genes, Cognition and Psychosis Program, IRP, NIMH, NIH, Bethesda, Maryland 20892, USA.

出版信息

Nature. 2011 Oct 26;478(7370):519-23. doi: 10.1038/nature10524.

DOI:10.1038/nature10524
PMID:22031444
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3510670/
Abstract

Previous investigations have combined transcriptional and genetic analyses in human cell lines, but few have applied these techniques to human neural tissue. To gain a global molecular perspective on the role of the human genome in cortical development, function and ageing, we explore the temporal dynamics and genetic control of transcription in human prefrontal cortex in an extensive series of post-mortem brains from fetal development through ageing. We discover a wave of gene expression changes occurring during fetal development which are reversed in early postnatal life. One half-century later in life, this pattern of reversals is mirrored in ageing and in neurodegeneration. Although we identify thousands of robust associations of individual genetic polymorphisms with gene expression, we also demonstrate that there is no association between the total extent of genetic differences between subjects and the global similarity of their transcriptional profiles. Hence, the human genome produces a consistent molecular architecture in the prefrontal cortex, despite millions of genetic differences across individuals and races. To enable further discovery, this entire data set is freely available (from Gene Expression Omnibus: accession GSE30272; and dbGaP: accession phs000417.v1.p1) and can also be interrogated via a biologist-friendly stand-alone application (http://www.libd.org/braincloud).

摘要

先前的研究将转录组和遗传学分析结合在了人类细胞系中,但很少有研究将这些技术应用于人类神经组织。为了从整体分子水平上研究人类基因组在皮质发育、功能和衰老中的作用,我们在一系列广泛的死后大脑中探索了人类前额叶皮质转录的时间动态和遗传调控,这些大脑样本来自胎儿发育到衰老的各个阶段。我们发现了一波在胎儿发育过程中发生的基因表达变化,这些变化在出生后的早期发生了逆转。在生命的半个世纪后,这种逆转模式在衰老和神经退行性变中得到了体现。尽管我们确定了数千个个体遗传多态性与基因表达之间的稳健关联,但我们也证明了受试者之间遗传差异的总程度与他们转录谱的整体相似性之间没有关联。因此,尽管个体之间存在数百万个遗传差异,但人类基因组在前额叶皮质中产生了一致的分子结构。为了促进进一步的发现,这个完整的数据集是免费提供的(来自基因表达综合数据库:注册号 GSE30272;和 dbGaP:注册号 phs000417.v1.p1),也可以通过一个对生物学家友好的独立应用程序进行查询(http://www.libd.org/braincloud)。

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