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A protein-protein interaction underlies the molecular basis for substrate recognition by an adenosine-to-inosine RNA-editing enzyme

机译:蛋白质 - 蛋白质相互作用通过腺苷 - 含有氨基氨基的RNA编辑酶进行底物识别的分子基础

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Adenosine deaminases that act on RNA (ADARs) convert adenosine to inosine within double-stranded regions of RNA, resulting in increased transcriptomic diversity, as well as protection of cellular double-stranded RNA (dsRNA) from silencing and improper immune activation. The presence of dsRNA-binding domains (dsRBDs) in all ADARs suggests these domains are important for substrate recognition; however, the role of dsRBDs in vivo remains largely unknown. Herein, our studies indicate the Caenorhabditis elegans ADAR enzyme, ADR-2, has low affinity for dsRNA, but interacts with ADR-1, an editing-deficient member of the ADAR family, which has a 100-fold higher affinity for dsRNA. ADR-1 uses one dsRBD to physically interact with ADR-2 and a second dsRBD to bind to dsRNAs, thereby tethering ADR-2 to substrates. ADR-2 interacts with &1200 transcripts in vivo, and ADR-1 is required for 80% of these interactions. Our results identify a novel mode of substrate recognition for ADAR enzymes and indicate that protein-protein interactions can guide substrate recognition for RNA editors.
机译:腺苷脱胺酶,其作用于RNA(ADAR)将腺苷转化为RNA的双链区域内的茴香氨酸,导致转录组多样性增加,以及保护细胞双链RNA(DSRNA)免受沉默和不正确的免疫活化。所有ADAR中的DSRNA结合域(DSRBDS)的存在表明这些域对基材识别很重要;然而,DSRBD在体内的作用仍然很大程度上是未知的。在此,我们的研究表明,秀丽隐杆线虫ADAR酶ADR-2对DSRNA具有低亲和力,但与ADR-1相互作用,ADAR系列的编辑缺陷构件,对DSRNA具有100倍的亲和力。 ADR-1使用一个DSRBD与ADR-2和第二DSRBD物理相互作用以与DSRNA结合,从而将ADR-2束缚到基板上。 ADR-2与& 1200份转录物的互动,并且需要ADR-1的80%的这些相互作用。我们的结果鉴定了ADAR酶的新型基材识别模式,并表明蛋白质 - 蛋白质相互作用可以引导RNA编辑器的底物识别。

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