Institute for Molecular Biology and Biophysics, ETH Zürich, Zürich 8093, Switzerland.
Institute for Physical Chemistry, ETH Zürich, Zürich 8093, Switzerland.
Nat Commun. 2014 May 14;5:3669. doi: 10.1038/ncomms4669.
High-resolution structural information on RNA and its functionally important complexes with proteins is dramatically underrepresented compared with proteins but is urgently needed for understanding cellular processes at the molecular and atomic level. Here we present an EPR-based protocol to help solving large RNA and protein-RNA complex structures in solution by providing long-range distance constraints between rigid fragments. Using enzymatic ligation of smaller RNA fragments, large doubly spin-labelled RNAs can be obtained permitting the acquisition of long distance distributions (>80 Å) within a large protein-RNA complex. Using a simple and fast calculation in torsion angle space of the spin-label distributions with the program CYANA, we can derive simple distance constraints between the spin labels and use them together with short-range distance restraints derived from NMR to determine the structure of a 70 kDa protein-RNA complex composed of three subcomplexes.
与蛋白质相比,RNA 及其与蛋白质的功能重要复合物的高分辨率结构信息的代表性严重不足,但对于在分子和原子水平上理解细胞过程是非常必要的。在这里,我们提出了一种基于 EPR 的方案,通过提供刚性片段之间的远程距离约束来帮助解决溶液中较大的 RNA 和蛋白-RNA 复合物的结构。通过酶促连接较小的 RNA 片段,可以获得双自旋标记的大 RNA,从而在大的蛋白-RNA 复合物中获得长距离分布(>80 Å)。使用程序 CYANA 在扭转角空间中对自旋标记分布进行简单快速的计算,我们可以推导出自旋标记之间的简单距离约束,并将其与从 NMR 得出的短程距离约束一起使用,以确定由三个亚基组成的 70 kDa 蛋白-RNA 复合物的结构。