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ELAVL1调节小鼠巨噬细胞中转录组范围内的miRNA结合。

ELAVL1 modulates transcriptome-wide miRNA binding in murine macrophages.

作者信息

Lu Yi-Chien, Chang Sung-Hee, Hafner Markus, Li Xi, Tuschl Thomas, Elemento Olivier, Hla Timothy

机构信息

Center for Vascular Biology, Department of Pathology and Laboratory Medicine, Weill Cornell Medical College, Cornell University, New York, NY 10065, USA.

Howard Hughes Medical Institute, Laboratory of RNA Molecular Biology, The Rockefeller University, New York, NY 10065, USA.

出版信息

Cell Rep. 2014 Dec 24;9(6):2330-43. doi: 10.1016/j.celrep.2014.11.030. Epub 2014 Dec 18.

Abstract

Posttranscriptional gene regulation by miRNAs and RNA binding proteins (RBP) is important in development, physiology, and disease. To examine the interplay between miRNAs and the RBP ELAVL1 (HuR), we mapped miRNA binding sites at the transcriptome-wide scale in wild-type and Elavl1 knockout murine bone-marrow-derived macrophages. Proximity of ELAVL1 binding sites attenuated miRNA binding to transcripts and promoted gene expression. Transcripts that regulate angiogenesis and macrophage/endothelial crosstalk were preferentially targeted by miRNAs, suggesting that ELAVL1 promotes angiogenesis, at least in part by antagonism of miRNA function. We found that ELAVL1 antagonized binding of miR-27 to the 3' UTR of Zfp36 mRNA and alleviated miR-27-mediated suppression of the RBP ZFP36 (Tristetraprolin). Thus, the miR-27-regulated mechanism synchronizes the expression of ELAVL1 and ZFP36. This study provides a resource for systems-level interrogation of posttranscriptional gene regulation in macrophages, a key cell type in inflammation, angiogenesis, and tissue homeostasis.

摘要

微小RNA(miRNA)和RNA结合蛋白(RBP)介导的转录后基因调控在发育、生理和疾病过程中发挥着重要作用。为了研究miRNA与RBP ELAVL1(HuR)之间的相互作用,我们在野生型和Elavl1基因敲除的小鼠骨髓来源巨噬细胞中,在全转录组范围内绘制了miRNA结合位点图谱。ELAVL1结合位点的临近会减弱miRNA与转录本的结合,并促进基因表达。调控血管生成以及巨噬细胞/内皮细胞相互作用的转录本优先被miRNA靶向,这表明ELAVL1至少部分通过拮抗miRNA功能来促进血管生成。我们发现ELAVL1拮抗miR-27与Zfp36 mRNA的3'非翻译区(UTR)的结合,并减轻miR-27介导的对RBP ZFP36(Tristetraprolin)的抑制作用。因此,miR-27调控的机制使ELAVL1和ZFP36的表达同步。本研究为在巨噬细胞(炎症、血管生成和组织稳态中的关键细胞类型)中进行转录后基因调控的系统水平研究提供了资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1185/4277505/8da39429867e/nihms645384f1.jpg

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