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控制反式剪接和操纵子前体mRNA加工的秀丽隐杆线虫序列。

C. elegans sequences that control trans-splicing and operon pre-mRNA processing.

作者信息

Graber Joel H, Salisbury Jesse, Hutchins Lucie N, Blumenthal Thomas

机构信息

The Jackson Laboratory, Bar Harbor, ME 04609, USA.

出版信息

RNA. 2007 Sep;13(9):1409-26. doi: 10.1261/rna.596707. Epub 2007 Jul 13.

Abstract

Many mRNAs in Caenorhabditis elegans are generated through a trans-splicing reaction that adds one of two classes of spliced leader RNA to an independently transcribed pre-mRNA. SL1 leaders are spliced mostly to pre-mRNAs from genes with outrons, intron-like sequences at the 5'-ends of the pre-mRNAs. In contrast, SL2 leaders are nearly exclusively trans-spliced to genes that occur downstream in polycistronic pre-mRNAs produced from operons. Operon pre-mRNA processing requires separation into individual transcripts, which is accomplished by 3'-processing of upstream genes and spliced leader trans-splicing to the downstream genes. We used a novel computational analysis, based on nonnegative matrix factorization, to identify and characterize significant differences in the cis-acting sequence elements that differentiate various types of functional site, including internal versus terminal 3'-processing sites, and SL1 versus SL2 trans-splicing sites. We describe several key elements, including the U-rich (Ur) element that couples 3'-processing with SL2 trans-splicing, and a novel outron (Ou) element that occurs upstream of SL1 trans-splicing sites. Finally, we present models of the distinct classes of trans-splicing reaction, including SL1 trans-splicing at the outron, SL2 trans-splicing in standard operons, competitive SL1-SL2 trans-splicing in operons with large intergenic separation, and SL1 trans-splicing in SL1-type operons, which have no intergenic separation.

摘要

秀丽隐杆线虫中的许多mRNA是通过转剪接反应产生的,该反应将两类剪接前导RNA之一添加到独立转录的前体mRNA上。SL1前导序列大多剪接到来自具有外显子(即前体mRNA 5'端的内含子样序列)的基因的前体mRNA上。相比之下,SL2前导序列几乎只转剪接到操纵子产生的多顺反子前体mRNA下游的基因上。操纵子前体mRNA的加工需要分离成单个转录本,这通过上游基因的3'加工和将剪接前导序列转剪接到下游基因来实现。我们基于非负矩阵分解进行了一项新颖的计算分析,以识别和表征顺式作用序列元件中的显著差异,这些差异区分了各种类型的功能位点,包括内部与末端3'加工位点以及SL1与SL2转剪接位点。我们描述了几个关键元件,包括将3'加工与SL2转剪接偶联的富含U的(Ur)元件,以及一个位于SL1转剪接位点上游的新型外显子(Ou)元件。最后,我们提出了不同类型转剪接反应的模型,包括在外显子处的SL1转剪接、标准操纵子中的SL2转剪接、基因间隔大的操纵子中的竞争性SL1 - SL2转剪接,以及无基因间隔的SL1型操纵子中的SL1转剪接。

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