首页> 外文期刊>Molecular and Cellular Biology >Pseudouridine Mapping in the Saccharomyces cerevisiae Spliceosomal U Small Nuclear RNAs (snRNAs) Reveals that Pseudouridine Synthase Pus1p Exhibits a Dual Substrate Specificity for U2 snRNA and tRNA
【24h】

Pseudouridine Mapping in the Saccharomyces cerevisiae Spliceosomal U Small Nuclear RNAs (snRNAs) Reveals that Pseudouridine Synthase Pus1p Exhibits a Dual Substrate Specificity for U2 snRNA and tRNA

机译:啤酒酵母U小核RNA(snRNA)中的假尿苷映射揭示了假尿苷合酶Pus1p对U2 snRNA和tRNA具有双重底物特异性。

获取原文
           

摘要

Pseudouridine (Ψ) residues were localized in theSaccharomyces cerevisiae spliceosomal U small nuclear RNAs (UsnRNAs) by using the chemical mapping method. In contrast to vertebrate UsnRNAs, S. cerevisiae UsnRNAs contain only a few Ψ residues, which are located in segments involved in intermolecular RNA-RNA or RNA-protein interactions. At these positions, UsnRNAs are universally modified. When yeast mutants disrupted for one of the several pseudouridine synthase genes (PUS1,PUS2, PUS3, and PUS4) or depleted in rRNA-pseudouridine synthase Cbf5p were tested for UsnRNA Ψ content, only the loss of the Pus1p activity was found to affect Ψ formation in spliceosomal UsnRNAs. Indeed, Ψ44 formation in U2 snRNA was abolished. By using purified Pus1p enzyme and in vitro-produced U2 snRNA, Pus1p is shown here to catalyze Ψ44 formation in the S. cerevisiae U2 snRNA. Thus, Pus1p is the first UsnRNA pseudouridine synthase characterized so far which exhibits a dual substrate specificity, acting on both tRNAs and U2 snRNA. As depletion of rRNA-pseudouridine synthase Cbf5p had no effect on UsnRNA Ψ content, formation of Ψ residues in S. cerevisiae UsnRNAs is not dependent on the Cbf5p-snoRNA guided mechanism.
机译:通过化学作图法将假尿苷(Ψ)残基定位在酿酒酵母(Saccharomyces cerevisiae)剪接U型小核RNA(UsnRNA)中。与脊椎动物的UsnRNAs相反, S。酿酒酵母UsnRNA仅含有少量Ψ残基,它们位于分子间RNA-RNA或RNA-蛋白质相互作用的片段中。在这些位置,UsnRNA被普遍修饰。当酵母突变体破坏了几个假尿苷合酶基因之一( PUS1 PUS2 PUS3 PUS4 )时或检测rRNA-伪尿苷合酶Cbf5p的耗竭或缺失后,发现UsnRNA的含量,只有Pus1p活性的丧失会影响剪接的UsnRNA的形成。实际上,U2 snRNA中的Ψ 44 形成已被取消。通过使用纯化的Pus1p酶和体外产生的U2 snRNA,Pus1p可以催化 S中的 44 形成。啤酒酵母U2 snRNA。因此,Pus1p是迄今为止表征的第一个UsnRNA伪尿苷合酶,它具有双重底物特异性,同时作用于tRNA和U2 snRNA。由于耗尽rRNA-伪尿苷合酶Cbf5p对UsnRNA的含量没有影响,因此在 S中形成残基。酿酒酵母UsnRNAs不依赖于Cbf5p-snoRNA指导的机制。

著录项

相似文献

  • 外文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号