Centre for Biomolecular Drug Research and Institute of Organic Chemistry, Leibniz University Hannover, Schneiderberg 38, 30167, Hannover, Germany.
Group of NMR-based Structural Chemistry, Helmholtz Centre for Infection Research, Inhoffenstrasse 7, 38124, Braunschweig, Germany.
Angew Chem Int Ed Engl. 2020 Apr 20;59(17):6866-6873. doi: 10.1002/anie.201915465. Epub 2020 Feb 28.
Solid-state NMR (ssNMR) is applicable to high molecular-weight (MW) protein assemblies in a non-amorphous precipitate. The technique yields atomic resolution structural information on both soluble and insoluble particles without limitations of MW or requirement of crystals. Herein, we propose and demonstrate an approach that yields the structure of protein-RNA complexes (RNP) solely from ssNMR data. Instead of using low-sensitivity magnetization transfer steps between heteronuclei of the protein and the RNA, we measure paramagnetic relaxation enhancement effects elicited on the RNA by a paramagnetic tag coupled to the protein. We demonstrate that this data, together with chemical-shift-perturbation data, yields an accurate structure of an RNP complex, starting from the bound structures of its components. The possibility of characterizing protein-RNA interactions by ssNMR may enable applications to large RNP complexes, whose structures are not accessible by other methods.
固态 NMR(ssNMR)适用于非无定形沉淀中的高分子量(MW)蛋白质组装体。该技术可提供可溶性和不溶性颗粒的原子分辨率结构信息,不受 MW 或晶体要求的限制。在此,我们提出并证明了一种仅从 ssNMR 数据即可获得蛋白质-RNA 复合物(RNP)结构的方法。我们不是使用蛋白质和 RNA 的异核之间的低灵敏度磁化转移步骤,而是测量通过与蛋白质偶联的顺磁标记在 RNA 上引起的顺磁弛豫增强效应。我们证明,该数据与化学位移扰动数据一起,可以从其组成部分的结合结构开始,获得 RNP 复合物的准确结构。通过 ssNMR 对蛋白质-RNA 相互作用进行表征的可能性可能使适用于其他方法无法获得其结构的大型 RNP 复合物的应用成为可能。