Department of Chemistry, 5101 Cass Ave., Wayne State University, Detroit, MI 48202, United States.
Department of Chemistry, 5101 Cass Ave., Wayne State University, Detroit, MI 48202, United States.
Methods. 2019 Mar 1;156:110-120. doi: 10.1016/j.ymeth.2018.10.015. Epub 2018 Nov 2.
Among different RNA modifications, the helix 69 (H69) region of the bacterial ribosomal RNA (rRNA) contains three pseudouridines (Ψs). H69 is functionally important due to its location in the heart of the ribosome. Several structural and functional studies have shown the importance of Ψ modifications in influencing the H69 conformation as well as maintaining key interactions in the ribosome during protein synthesis. Therefore, a need exists to understand the influence of modified nucleosides on conformational dynamics of the ribosome under solution conditions that mimic the cellular environment. In this review on chemical probing, we provide detailed protocols for the use of dimethyl sulfate (DMS) to examine H69 conformational states and the influence of Ψ modifications under varying solution conditions in the context of both ribosomal subunits and full ribosomes. The use of DMS footprinting to study the binding of aminoglycosides to the H69 region of bacterial rRNA as a potential antibiotic target will also be discussed. As highlighted in this work, DMS probing and footprinting are versatile techniques that can be used to gain important insight into RNA local structure and RNA-ligand interactions, respectively.
在不同的 RNA 修饰中,细菌核糖体 RNA(rRNA)的螺旋 69(H69)区域包含三个假尿嘧啶核苷(Ψs)。由于其位于核糖体的核心位置,H69 具有重要的功能。几项结构和功能研究表明,Ψ 修饰对于影响 H69 构象以及在蛋白质合成过程中维持核糖体中的关键相互作用非常重要。因此,需要了解在模拟细胞环境的溶液条件下,修饰核苷对核糖体构象动力学的影响。在本关于化学探测的综述中,我们详细介绍了使用二甲硫酸盐(DMS)的方案,以检查 H69 的构象状态以及在核糖体亚基和完整核糖体中不同溶液条件下 Ψ 修饰的影响。还将讨论 DMS 足迹法在研究氨基糖苷类抗生素与细菌 rRNA H69 区域结合作为潜在抗生素靶标的应用。如本文所述,DMS 探测和足迹法是两种非常有用的技术,可以分别用于深入了解 RNA 的局部结构和 RNA-配体相互作用。