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长非编码 RNA 的剪接主要依赖于多嘧啶 tract 和 5'剪接位点序列,因为它们与 SR 蛋白的相互作用较弱。

Splicing of long non-coding RNAs primarily depends on polypyrimidine tract and 5' splice-site sequences due to weak interactions with SR proteins.

机构信息

Institute of Molecular Genetics, Czech Academy of Sciences, Prague, Czech Republic.

Computational Regulatory Genomics, MRC London Institute of Medical Sciences, London W12 0NN, UK.

出版信息

Nucleic Acids Res. 2019 Jan 25;47(2):911-928. doi: 10.1093/nar/gky1147.

DOI:10.1093/nar/gky1147
PMID:30445574
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6344860/
Abstract

Many nascent long non-coding RNAs (lncRNAs) undergo the same maturation steps as pre-mRNAs of protein-coding genes (PCGs), but they are often poorly spliced. To identify the underlying mechanisms for this phenomenon, we searched for putative splicing inhibitory sequences using the ncRNA-a2 as a model. Genome-wide analyses of intergenic lncRNAs (lincRNAs) revealed that lincRNA splicing efficiency positively correlates with 5'ss strength while no such correlation was identified for PCGs. In addition, efficiently spliced lincRNAs have higher thymidine content in the polypyrimidine tract (PPT) compared to efficiently spliced PCGs. Using model lincRNAs, we provide experimental evidence that strengthening the 5'ss and increasing the T content in PPT significantly enhances lincRNA splicing. We further showed that lincRNA exons contain less putative binding sites for SR proteins. To map binding of SR proteins to lincRNAs, we performed iCLIP with SRSF2, SRSF5 and SRSF6 and analyzed eCLIP data for SRSF1, SRSF7 and SRSF9. All examined SR proteins bind lincRNA exons to a much lower extent than expression-matched PCGs. We propose that lincRNAs lack the cooperative interaction network that enhances splicing, which renders their splicing outcome more dependent on the optimality of splice sites.

摘要

许多新生的长非编码 RNA(lncRNA)经历与蛋白质编码基因(PCG)的前 mRNA 相同的成熟步骤,但它们通常拼接不良。为了确定这种现象的潜在机制,我们使用 ncRNA-a2 作为模型搜索了潜在的剪接抑制序列。基因间长非编码 RNA(lincRNA)的全基因组分析表明,lincRNA 剪接效率与 5'ss 强度呈正相关,而 PCG 则没有这种相关性。此外,与高效剪接的 PCG 相比,高效剪接的 lincRNA 在多嘧啶区(PPT)中具有更高的胸苷含量。使用模型 lincRNA,我们提供了实验证据表明,增强 5'ss 和增加 PPT 中的 T 含量可显著增强 lincRNA 的剪接。我们进一步表明,lincRNA 外显子包含的 SR 蛋白结合位点较少。为了映射 SR 蛋白与 lincRNA 的结合,我们用 SRSF2、SRSF5 和 SRSF6 进行了 iCLIP,并分析了 SRSF1、SRSF7 和 SRSF9 的 eCLIP 数据。所有检查的 SR 蛋白与 lincRNA 外显子的结合程度都远低于表达匹配的 PCG。我们提出,lincRNA 缺乏增强剪接的协同相互作用网络,这使得它们的剪接结果更加依赖于剪接位点的最优性。

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