Wandrey Franziska, Montellese Christian, Koos Krisztian, Badertscher Lukas, Bammert Lukas, Cook Atlanta G, Zemp Ivo, Horvath Peter, Kutay Ulrike
Institute of Biochemistry, ETH Zurich, Zurich, Switzerland.
Institute of Biochemistry, ETH Zurich, Zurich, Switzerland Molecular Life Sciences Ph.D. Program, Zurich, Switzerland.
Mol Cell Biol. 2015 Oct;35(20):3491-503. doi: 10.1128/MCB.00306-15. Epub 2015 Aug 3.
The interleukin enhancer binding factors ILF2 (NF45) and ILF3 (NF90/NF110) have been implicated in various cellular pathways, such as transcription, microRNA (miRNA) processing, DNA repair, and translation, in mammalian cells. Using tandem affinity purification, we identified human NF45 and NF90 as components of precursors to 60S (pre-60S) ribosomal subunits. NF45 and NF90 are enriched in nucleoli and cosediment with pre-60S ribosomal particles in density gradient analysis. We show that association of the NF45/NF90 heterodimer with pre-60S ribosomal particles requires the double-stranded RNA binding domains of NF90, while depletion of NF45 and NF90 by RNA interference leads to a defect in 60S biogenesis. Nucleoli of cells depleted of NF45 and NF90 have altered morphology and display a characteristic spherical shape. These effects are not due to impaired rRNA transcription or processing of the precursors to 28S rRNA. Consistent with a role of the NF45/NF90 heterodimer in nucleolar steps of 60S subunit biogenesis, downregulation of NF45 and NF90 leads to a p53 response, accompanied by induction of the cyclin-dependent kinase inhibitor p21/CIP1, which can be counteracted by depletion of RPL11. Together, these data indicate that NF45 and NF90 are novel higher-eukaryote-specific factors required for the maturation of 60S ribosomal subunits.
白细胞介素增强子结合因子ILF2(NF45)和ILF3(NF90/NF110)参与了哺乳动物细胞中的多种细胞途径,如转录、微小RNA(miRNA)加工、DNA修复和翻译。利用串联亲和纯化技术,我们鉴定出人类NF45和NF90是60S核糖体亚基前体(pre-60S)的组成成分。在密度梯度分析中,NF45和NF90在核仁中富集,并与pre-60S核糖体颗粒共沉降。我们发现,NF45/NF90异二聚体与pre-60S核糖体颗粒的结合需要NF90的双链RNA结合结构域,而RNA干扰使NF45和NF90缺失会导致60S生物合成出现缺陷。NF45和NF90缺失的细胞的核仁形态发生改变,呈现出特征性的球形。这些效应并非由于rRNA转录受损或28S rRNA前体的加工过程受损所致。与NF45/NF90异二聚体在60S亚基生物合成的核仁步骤中的作用一致,NF45和NF90的下调会导致p53反应,并伴随细胞周期蛋白依赖性激酶抑制剂p21/CIP1的诱导,而RPL11的缺失可以抵消这种诱导作用。总之,这些数据表明,NF45和NF90是60S核糖体亚基成熟所需的新型高等真核生物特异性因子。