The State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences, Nanjing University, Nanjing, China.
Institute of Artificial Intelligence Biomedicine, Nanjing University, Nanjing, China.
Nucleic Acids Res. 2021 May 7;49(8):4738-4749. doi: 10.1093/nar/gkab202.
RNA 2'-O-methylation is widely distributed and plays important roles in various cellular processes. Mycoplasma genitalium RNase R (MgR), a prokaryotic member of the RNase II/RNB family, is a 3'-5' exoribonuclease and is particularly sensitive to RNA 2'-O-methylation. However, how RNase R interacts with various RNA species and exhibits remarkable sensitivity to substrate 2'-O-methyl modifications remains elusive. Here we report high-resolution crystal structures of MgR in apo form and in complex with various RNA substrates. The structural data together with extensive biochemical analysis quantitively illustrate MgR's ribonuclease activity and significant sensitivity to RNA 2'-O-methylation. Comparison to its related homologs reveals an exquisite mechanism for the recognition and degradation of RNA substrates. Through structural and mutagenesis studies, we identified proline 277 to be responsible for the significant sensitivity of MgR to RNA 2'-O-methylation within the RNase II/RNB family. We also generated several MgR variants with modulated activities. Our work provides a mechanistic understanding of MgR activity that can be harnessed as a powerful RNA analytical tool that will open up a new venue for RNA 2'-O-methylations research in biological and clinical samples.
RNA 2'-O-甲基化广泛分布,并在各种细胞过程中发挥重要作用。支原体核糖核酸酶 R(MgR)是 RNase II/RNB 家族的原核成员,是一种 3'-5'外切核酸酶,对 RNA 2'-O-甲基化特别敏感。然而,RNase R 如何与各种 RNA 种类相互作用并表现出对底物 2'-O-甲基化修饰的显著敏感性仍然难以捉摸。在这里,我们报告了 MgR 在apo 形式和与各种 RNA 底物复合物形式的高分辨率晶体结构。结构数据与广泛的生化分析一起定量说明了 MgR 的核糖核酸酶活性和对 RNA 2'-O-甲基化的显著敏感性。与相关同源物的比较揭示了识别和降解 RNA 底物的精巧机制。通过结构和突变研究,我们确定脯氨酸 277 负责 MgR 在 RNase II/RNB 家族中对 RNA 2'-O-甲基化的高敏感性。我们还产生了几种具有调节活性的 MgR 变体。我们的工作提供了对 MgR 活性的机制理解,可将其用作强大的 RNA 分析工具,为生物和临床样本中的 RNA 2'-O-甲基化研究开辟新途径。