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一种新型的、必需的跨剪接蛋白将线虫 SL1 snRNP 与 CBC-ARS2 复合物连接起来。

A novel, essential trans-splicing protein connects the nematode SL1 snRNP to the CBC-ARS2 complex.

机构信息

School of Medicine, Medical Sciences and Nutrition, University of Aberdeen, Institute of Medical Sciences, Foresterhill, Aberdeen AB25 2ZD, Scotland, UK.

Centre of Genome-Enabled Biology and Medicine, University of Aberdeen, 23 St Machar Drive, Aberdeen AB24 3RY, Scotland, UK.

出版信息

Nucleic Acids Res. 2022 Jul 22;50(13):7591-7607. doi: 10.1093/nar/gkac534.

Abstract

Spliced leader trans-splicing is essential for gene expression in many eukaryotes. To elucidate the molecular mechanism of this process, we characterise the molecules associated with the Caenorhabditis elegans major spliced leader snRNP (SL1 snRNP), which donates the spliced leader that replaces the 5' untranslated region of most pre-mRNAs. Using a GFP-tagged version of the SL1 snRNP protein SNA-1 created by CRISPR-mediated genome engineering, we immunoprecipitate and identify RNAs and protein components by RIP-Seq and mass spectrometry. This reveals the composition of the SL1 snRNP and identifies associations with spliceosome components PRP-8 and PRP-19. Significantly, we identify a novel, nematode-specific protein required for SL1 trans-splicing, which we designate SNA-3. SNA-3 is an essential, nuclear protein with three NADAR domains whose function is unknown. Mutation of key residues in NADAR domains inactivates the protein, indicating that domain function is required for activity. SNA-3 interacts with the CBC-ARS2 complex and other factors involved in RNA metabolism, including SUT-1 protein, through RNA or protein-mediated contacts revealed by yeast two-hybrid assays, localisation studies and immunoprecipitations. Our data are compatible with a role for SNA-3 in coordinating trans-splicing with target pre-mRNA transcription or in the processing of the Y-branch product of the trans-splicing reaction.

摘要

拼接体 leader 反式剪接对于许多真核生物的基因表达至关重要。为了阐明这个过程的分子机制,我们对秀丽隐杆线虫主要拼接体 leader snRNP(SL1 snRNP)相关的分子进行了表征,该 snRNP 提供了取代大多数前体 mRNA 5'非翻译区的拼接体 leader。我们使用 CRISPR 介导的基因组工程创建的 GFP 标记的 SL1 snRNP 蛋白 SNA-1 的版本进行 GFP 免疫沉淀,并通过 RIP-Seq 和质谱鉴定 RNA 和蛋白质成分。这揭示了 SL1 snRNP 的组成,并确定了与剪接体成分 PRP-8 和 PRP-19 的关联。重要的是,我们鉴定出一种新型的、线虫特异性的蛋白,它是 SL1 反式剪接所必需的,我们将其命名为 SNA-3。SNA-3 是一种必需的核蛋白,具有三个 NADAR 结构域,其功能未知。NADAR 结构域中关键残基的突变使该蛋白失活,表明结构域功能是活性所必需的。SNA-3 与 CBC-ARS2 复合物以及其他涉及 RNA 代谢的因子相互作用,包括 SUT-1 蛋白,通过酵母双杂交、定位研究和免疫沉淀实验揭示的 RNA 或蛋白介导的相互作用。我们的数据与 SNA-3 在协调反式剪接与靶前体 mRNA 转录或在反式剪接反应的 Y 分支产物的加工中的作用是一致的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/73af/9303266/1c8bee0a5df4/gkac534fig1.jpg

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