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将启动子与其远程相互作用元件连接起来的多能调控电路。

The pluripotent regulatory circuitry connecting promoters to their long-range interacting elements.

作者信息

Schoenfelder Stefan, Furlan-Magaril Mayra, Mifsud Borbala, Tavares-Cadete Filipe, Sugar Robert, Javierre Biola-Maria, Nagano Takashi, Katsman Yulia, Sakthidevi Moorthy, Wingett Steven W, Dimitrova Emilia, Dimond Andrew, Edelman Lucas B, Elderkin Sarah, Tabbada Kristina, Darbo Elodie, Andrews Simon, Herman Bram, Higgs Andy, LeProust Emily, Osborne Cameron S, Mitchell Jennifer A, Luscombe Nicholas M, Fraser Peter

机构信息

Nuclear Dynamics Programme, The Babraham Institute, Babraham Research Campus, Cambridge CB22 3AT, United Kingdom;

University College London, UCL Genetics Institute, Department of Genetics, Evolution and Environment, University College London, London WC1E 6BT, United Kingdom; Cancer Research UK London Research Institute, London WC2A 3LY, United Kingdom;

出版信息

Genome Res. 2015 Apr;25(4):582-97. doi: 10.1101/gr.185272.114. Epub 2015 Mar 9.

Abstract

The mammalian genome harbors up to one million regulatory elements often located at great distances from their target genes. Long-range elements control genes through physical contact with promoters and can be recognized by the presence of specific histone modifications and transcription factor binding. Linking regulatory elements to specific promoters genome-wide is currently impeded by the limited resolution of high-throughput chromatin interaction assays. Here we apply a sequence capture approach to enrich Hi-C libraries for >22,000 annotated mouse promoters to identify statistically significant, long-range interactions at restriction fragment resolution, assigning long-range interacting elements to their target genes genome-wide in embryonic stem cells and fetal liver cells. The distal sites contacting active genes are enriched in active histone modifications and transcription factor occupancy, whereas inactive genes contact distal sites with repressive histone marks, demonstrating the regulatory potential of the distal elements identified. Furthermore, we find that coregulated genes cluster nonrandomly in spatial interaction networks correlated with their biological function and expression level. Interestingly, we find the strongest gene clustering in ES cells between transcription factor genes that control key developmental processes in embryogenesis. The results provide the first genome-wide catalog linking gene promoters to their long-range interacting elements and highlight the complex spatial regulatory circuitry controlling mammalian gene expression.

摘要

哺乳动物基因组含有多达一百万个调控元件,这些元件通常与其靶基因相距甚远。长程元件通过与启动子的物理接触来控制基因,并且可以通过特定组蛋白修饰和转录因子结合的存在来识别。目前,高通量染色质相互作用分析的分辨率有限,阻碍了在全基因组范围内将调控元件与特定启动子联系起来。在这里,我们应用一种序列捕获方法,针对超过22,000个注释的小鼠启动子富集Hi-C文库,以在限制性片段分辨率下识别具有统计学意义的长程相互作用,在全基因组范围内将长程相互作用元件与其在胚胎干细胞和胎儿肝细胞中的靶基因进行配对。与活跃基因接触的远端位点富含活跃的组蛋白修饰和转录因子占据,而不活跃基因则与带有抑制性组蛋白标记的远端位点接触,这证明了所鉴定的远端元件的调控潜力。此外,我们发现共调控基因在与其生物学功能和表达水平相关的空间相互作用网络中呈非随机聚类。有趣的是,我们在胚胎干细胞中发现,控制胚胎发育关键过程的转录因子基因之间的基因聚类最为强烈。这些结果提供了首个全基因组范围的目录,将基因启动子与其长程相互作用元件联系起来,并突出了控制哺乳动物基因表达的复杂空间调控电路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0535/4381529/38e855378eda/582f01.jpg

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