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多顺反子秀丽隐杆线虫前体mRNA加工过程中3'末端形成与SL2特异性反式剪接之间的关系

Relationship between 3' end formation and SL2-specific trans-splicing in polycistronic Caenorhabditis elegans pre-mRNA processing.

作者信息

Kuersten S, Lea K, MacMorris M, Spieth J, Blumenthal T

机构信息

Department of Biology, Indiana University, Bloomington 47405, USA.

出版信息

RNA. 1997 Mar;3(3):269-78.

PMID:9056764
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1369479/
Abstract

About 25% of the genes in the nematode Caenorhabditis elegans are in operons, polycistronic transcription units in which the genes are only 100-400 bp apart. The operon pre-mRNAs are processed into monocistronic mRNAs by a combination of cleavage and polyadenylation at the 3' end of the upstream mRNA and SL2 trans-splicing at the 5' end of the downstream mRNA. To determine whether 3' end formation and SL2 trans-splicing are coupled mechanistically, we tested a gpd-2/gpd-3 operon construct driven by a C. elegans heat shock promoter, and measured the effects of inhibition of 3' end formation and/or trans-splicing on the processing of the polycistronic RNA in vivo. The results indicate that proper 3' end formation of the upstream mRNA in an operon is required for SL2-specificity of downstream mRNA trans-splicing. In contrast, trans-splicing of the downstream mRNA is not necessary for correct 3' end formation of the upstream mRNA. In addition, shortening the distance between the 5' cap and the AAUAAA of gpd-2 (the upstream gene) decreases the efficiency of 3' end formation and is accompanied by a replacement of SL2 with SL1 at the trans-splice site of gpd-3, the downstream gene. These results indicate that SL2 trans-splicing, in C. elegans, is coupled mechanistically to 3' end formation in the processing of polycistronic pre-mRNAs.

摘要

线虫秀丽隐杆线虫中约25%的基因存在于操纵子中,即多顺反子转录单元,其中的基因间距仅为100 - 400碱基对。操纵子前体mRNA通过上游mRNA 3'端的切割和聚腺苷酸化以及下游mRNA 5'端的SL2反式剪接相结合的方式加工成单顺反子mRNA。为了确定3'端形成和SL2反式剪接在机制上是否偶联,我们测试了由秀丽隐杆线虫热休克启动子驱动的gpd - 2/gpd - 3操纵子构建体,并在体内测量了抑制3'端形成和/或反式剪接对多顺反子RNA加工的影响。结果表明,操纵子中上游mRNA正确的3'端形成是下游mRNA反式剪接具有SL2特异性所必需的。相反,下游mRNA的反式剪接对于上游mRNA正确的3'端形成并非必需。此外,缩短gpd - 2(上游基因)的5'帽与AAUAAA之间的距离会降低3'端形成的效率,并伴随着下游基因gpd - 3的反式剪接位点处SL2被SL1取代。这些结果表明,在秀丽隐杆线虫中,SL2反式剪接在多顺反子前体mRNA加工过程中在机制上与3'端形成偶联。