首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Structural basis for recognition of the AGNN tetraloop RNA fold by the double-stranded RNA-binding domain of Rnt1p RNase III.
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Structural basis for recognition of the AGNN tetraloop RNA fold by the double-stranded RNA-binding domain of Rnt1p RNase III.

机译:Rnt1p RNase III的双链RNA结合结构域识别AGNN四环RNA折叠的结构基础。

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Specific recognition of double-stranded RNA (dsRNA) by dsRNA-binding domains (dsRBDs) is involved in a large number of biological and regulatory processes. Although structures of dsRBDs in complex with dsRNA have revealed how they can bind to dsRNA in general, these do not explain how a dsRBD can recognize specific RNAs. Rnt1p, a member of the RNase III family of dsRNA endonucleases, is a key component of the Saccharomyces cerevisiae RNA-processing machinery. The Rnt1p dsRBD has been implicated in targeting this endonuclease to its RNA substrates, by recognizing hairpins closed by AGNN tetraloops. We report the solution structure of Rnt1p dsRBD complexed to the 5' terminal hairpin of one of its small nucleolar RNA substrates, the snR47 precursor. The conserved AGNN tetraloop fold is retained in the protein-RNA complex. The dsRBD contacts the RNA at successive minor, major, and tetraloop minor grooves on one face of the helix. Surprisingly, neither the universally conserved G nor the highly conserved A are recognized by specific hydrogen bonds to the bases. Rather, the N-terminal helix fits snugly into the minor groove of the RNA tetraloop and top of the stem, interacting in a non-sequence-specific manner with the sugar-phosphate backbone and the two nonconserved tetraloop bases. Mutational analysis of residues that contact the tetraloop region show that they are functionally important for RNA processing in the context of the entire protein in vivo. These results show how a single dsRBD can convey specificity for particular RNA targets, by structure specific recognition of a conserved tetraloop fold.
机译:dsRNA结合域(dsRBD)对双链RNA(dsRNA)的特异性识别涉及大量的生物学和调控过程。尽管与dsRNA结合的dsRBD的结构已揭示了它们通常如何与dsRNA结合,但这些并不能解释dsRBD如何识别特定的RNA。 Rnt1p是dsRNA核酸内切酶RNase III家族的成员,是酿酒酵母RNA处理设备的关键组成部分。 Rnt1p dsRBD通过识别由AGNN四环闭合的发夹,与将这种核酸内切酶靶向其RNA底物有关。我们报告的解决方案结构的Rnt1p dsRBD复合到其小核仁RNA底物之一,snR47前体的5'末端发夹。保守的AGNN四环折叠保留在蛋白质-RNA复合物中。 dsRBD在螺旋的一个面上的连续小,主要和四环小凹槽处与RNA接触。出乎意料的是,普遍保守的G和高度保守的A都没有被碱基的特异性氢键所识别。而是,N末端螺旋紧密地适合RNA四环的小沟和茎的顶部,以非序列特异性的方式与糖磷酸骨架和两个非保守的四环碱基相互作用。接触四环区域的残基的突变分析表明,在体内整个蛋白质的情况下,它们对于RNA加工具有重要的功能。这些结果表明单个dsRBD如何通过保守的四环折叠的结构特异性识别来传达对特定RNA靶标的特异性。

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