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An RNA electrophoretic mobility shift and mutational analysis of rnp-4f 5′-UTR intron splicing regulatory proteins in Drosophila reveals a novel new role for a dADAR protein isoform

机译:RNA电泳迁移率偏移和RNP-4F 5-UTR内含子剪断调节蛋白的迁移分析显示DADAR蛋白同种型的新作用

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摘要

Alternative splicing greatly enhances the diversity of proteins encoded by eukaryotic genomes, and is also important in gene expression control. In contrast to the great depth of knowledge as to molecular mechanisms in the splicing pathway itself, relatively little is known about the regulatory events behind this process. The 5′-UTR and 3′-UTR in pre-mRNAs play a variety of roles in controlling eukaryotic gene expression, including translational modulation, and nearly 4,000 of the roughly 14,000 protein coding genes in Drosophila contain introns of unknown functional significance in their 5′-UTR. Here we report the results of an RNA electrophoretic mobility shift analysis of Drosophila rnp-4f 5′-UTR intron 0 splicing regulatory proteins. The pre-mRNA potential regulatory element consists of an evolutionarily-conserved 177-nt stem-loop arising from pairing of intron 0 with part of adjacent exon 2. Incubation of in vitro transcribed probe with embryo protein extract is shown to result in two shifted RNA-protein bands, and protein extract from a dADAR null mutant fly line results in only one shifted band. A mutated stem-loop in which the conserved exon 2 primary sequence is changed but secondary structure maintained by introducing compensatory base changes results in diminished band shifts. To test the hypothesis that dADAR plays a role in intron splicing regulation in vivo, levels of unspliced rnp-4f mRNA in dADAR mutant were compared to wild-type via real-time qRT-PCR. The results show that during embryogenesis unspliced rnp-4f mRNA levels fall by up to 85% in the mutant, in support of the hypothesis. Taken together, these results demonstrate a novel role for dADAR protein in rnp-4f 5′-UTR alternative intron splicing regulation which is consistent with a previously proposed model.
机译:选择性剪接极大地增强了由真核基因组编码的蛋白质的多样性,并且在基因表达控制中也很重要。与对剪接途径本身的分子机制的深入了解相反,对该过程背后的调控事件知之甚少。前mRNA中的5'-UTR和3'-UTR在控制真核基因表达中起多种作用,包括翻译调节,而果蝇中大约14,000个蛋白质编码基因中的近4,000个在其5个中含有未知功能意义的内含子'-UTR。在这里,我们报告果蝇rnp-4f 5'-UTR内含子0剪接调节蛋白的RNA电泳迁移率迁移分析的结果。 mRNA之前的潜在调控元件由内含子0与相邻外显子2的一部分配对形成的进化保守的177-nt茎环组成。体外转录探针与胚胎蛋白提取物的孵育显示可导致两个移位的RNA -蛋白带和来自dADAR空突变体蝇线的蛋白提取物仅产生一个移位带。变异的茎环,其中保守的外显子2的一级序列发生变化,但通过引入补偿性碱基变化而保持的二级结构导致带移减少。为了检验dADAR在体内内含子剪接调控中起作用的假设,通过实时qRT-PCR将dADAR突变体中未剪接的rnp-4f mRNA的水平与野生型进行了比较。结果表明,在胚胎发生过程中,突变体中未剪接的rnp-4f mRNA水平最多下降了85%,以支持这一假设。综上所述,这些结果证明了dADAR蛋白在rnp-4f 5'-UTR替代内含子剪接调控中的新作用,与先前提出的模型一致。

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