首页> 外文期刊>Nucleic Acids Research >Dissecting the role of conserved box C/D sRNA sequences in di-sRNP assembly and function.
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Dissecting the role of conserved box C/D sRNA sequences in di-sRNP assembly and function.

机译:剖析了保守框C / D sRNA序列在di-sRNP组装和功能中的作用。

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摘要

In all three kingdoms of life, nucleotides in ribosomal RNA (rRNA) are post-transcriptionally modified. One type of chemical modification is 2'-O-ribose methylation, which is, in eukaryotes and archaea, performed by box C/D small ribonucleoproteins (box C/D sRNPs in archaea) and box C/D small nucleolar ribonucleoproteins (box C/D snoRNPs in eukaryotes), respectively. Recently, the first structure of any catalytically active box C/D s(no)RNP determined by electron microscopy and single particle analysis surprisingly demonstrated that they are dimeric RNPs. Mutational analyses of the Nop5 protein interface suggested that di-sRNP formation is also required for the in vitro catalytic activity. We have now analyzed the functional relevance of the second interface, the sRNA interface, within the box C/D di-sRNP. Mutations in conserved sequence elements of the sRNA, which allow sRNP assembly but which severely interfere with the catalytic activity of box C/D sRNPs, prevent formation of the di-sRNP. In addition, we can observe the dimeric box C/D sRNP architecture with a different box C/D sRNP, suggesting that this architecture is conserved. Together, these results provide further support for the functional relevance of the di-sRNP architecture and also provide a structural explanation for the observed defects in catalysis of 2'-O-ribose methylation.
机译:在所有三个生命王国中,核糖体RNA(rRNA)中的核苷酸在转录后均被修饰。一种化学修饰类型是2'-O-核糖甲基化,在真核生物和古细菌中,是通过框C / D小核糖核蛋白(古细菌中框C / D sRNP)和框C / D小核仁核糖核蛋白(框C)进行的真核生物中的/ D snoRNP)。最近,通过电子显微镜和单颗粒分析确定的任何催化活性盒C / D s(no)RNP的第一结构令人惊讶地证明它们是二聚体RNP。 Nop5蛋白界面的突变分析表明,di-sRNP的形成还需要体外催化活性。现在,我们分析了C / D di-sRNP框内第二个接口sRNA接口的功能相关性。 sRNA保守序列元素的突变允许sRNP组装,但严重干扰盒C / D sRNP的催化活性,阻止了di-sRNP的形成。此外,我们可以观察到具有不同盒式C / D sRNP的二聚盒式C / D sRNP体系结构,这表明该体系结构是保守的。在一起,这些结果为di-sRNP结构的功能相关性提供了进一步的支持,也为观察到的2'-O-核糖甲基化催化缺陷提供了结构解释。

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