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首页> 外文期刊>RNA >The Saccharomyces cerevisiae U2 snRNA : pseudouridine-synthase Pus7p is a novel multisite-multisubstrate RNA :Psi-synthase also acting on tRNAs
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The Saccharomyces cerevisiae U2 snRNA : pseudouridine-synthase Pus7p is a novel multisite-multisubstrate RNA :Psi-synthase also acting on tRNAs

机译:酿酒酵母U2 snRNA:伪尿苷合酶Pus7p是一种新型的多位点多底物RNA:Psi合酶也作用于tRNA

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摘要

The Saccharomyces cerevisiae Pus7 protein was recently characterized as a novel RNA:pseudouridine (Psi)-synthase acting at position 35 in U2 snRNA. However, U2 snRNA was the only potential substrate tested for this enzyme. In this work, we demonstrated that although Pus7p is responsible for the formation of only one of the six Psi residues present in yeast UsnRNAs, it catalyzes U to Psi conversion at position 13 in cytoplasmic tRNAs and at position 35 in pre-tRNA(Tyr). Sites of RNA modification by Pus7p were identified by analysis of the in vivo RNA modification defects resulting from the absence of active Pus7p production and by in vitro tests using extracts from WT and genetically modified yeast cells. For demonstration of the direct implication of Pus7p in RNA modification, the activity of the WT and mutated Pus7p recombinant proteins was tested on in vitro produced tRNA and pre-tRNA transcripts. Mutation of an aspartic acid residue (D256) that is conserved in all Pus7 homologs abolishes the enzymatic activity both in vivo and in vitro. This suggests the direct involvement of D256 in catalysis. Target sites of Pus7p in RNAs share a common sequence Pu(G/C)UNPsiAPu (Pu = purine, N = any nucleotide), which is expected to be important for substrate recognition. Modification of tRNAs by Pus7p explains the presence of Pus7p homologs in archaea and some bacteria species, which do not have U2 snRNA, and in vertebrates, where Psi34 (equivalent to Psi35 in yeast) formation in U2 snRNA is an H/ACA snoRNA guided process. Our results increase the number of known RNA modification enzymes acting on different types of cellular RNAs. [References: 46]
机译:酿酒酵母Pus7蛋白最近被表征为一种新型的RNA:伪杜鹃碱(Psi)合酶,作用于U2 snRNA的35位。但是,U2 snRNA是测试该酶的唯一潜在底物。在这项工作中,我们证明了虽然Pus7p仅负责酵母UsnRNA中存在的六个Psi残基之一的形成,但它在细胞质tRNA的13位和pre-tRNA(Tyr)的35位催化U到Psi的转化。 。通过分析因缺乏活性Pus7p产生而引起的体内RNA修饰缺陷,以及通过使用WT和转基因酵母细胞提取物进行的体外测试,可以确定Pus7p修饰RNA的位点。为了证明Pus7p直接参与RNA修饰,在体外产生的tRNA和pre-tRNA转录本上测试了WT和突变的Pus7p重组蛋白的活性。在所有Pus7同源物中均保守的天冬氨酸残基(D256)突变消除了体内和体外的酶活性。这表明D256直接参与催化。 RNA中Pus7p的靶位点共有一个公共序列Pu(G / C)UNPsiAPu(Pu =嘌呤,N =任何核苷酸),这对于底物识别很重要。 Pus7p对tRNA的修饰解释了在古细菌和一些没有U2 snRNA的细菌物种以及脊椎动物中存在Pus7p同源物,在脊椎动物中,U2 snRNA中Psi34(相当于酵母中的Psi35)形成是H / ACA snoRNA指导的过程。我们的结果增加了作用于不同类型细胞RNA的已知RNA修饰酶的数量。 [参考:46]

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