Bavarian NMR Center, Department of Bioscience, School of Natural Sciences, Technical University of Munich, Ernst-Otto-Fischer-Str. 2, 85748 Garching, Germany.
Institute of Structural Biology, Helmholtz Munich, Ingolstädter Landstr. 1, 85764 Neuherberg, Germany.
J Am Chem Soc. 2024 Jun 5;146(22):15403-15410. doi: 10.1021/jacs.4c03294. Epub 2024 May 24.
High-resolution structural NMR analyses of membrane proteins are challenging due to their large size, resulting in broad resonances and strong signal overlap. Among the isotope labeling methods that can remedy this situation, segmental isotope labeling is a suitable strategy to simplify NMR spectra and retain high-resolution structural information. However, protein ligation within integral membrane proteins is complicated since the hydrophobic protein fragments are insoluble, and the removal of ligation side-products is elaborate. Here, we show that a stabilized split-intein system can be used for rapid and high-yield protein trans-splicing of integral membrane proteins under denaturing conditions. This setup enables segmental isotope labeling experiments within folded protein domains for NMR studies. We show that high-quality NMR spectra of markedly reduced complexity can be obtained in detergent micelles and lipid nanodiscs. Of note, the nanodisc insertion step specifically selects for the ligated and correctly folded membrane protein and simultaneously removes ligation byproducts. Using this tailored workflow, we show that high-resolution NMR structure determination is strongly facilitated with just two segmentally isotope-labeled membrane protein samples. The presented method will be broadly applicable to structural and dynamical investigations of (membrane-) proteins and their complexes by solution and solid-state NMR but also other structural methods where segmental labeling is beneficial.
由于其尺寸较大,导致共振宽且信号重叠强,因此对膜蛋白进行高分辨率结构 NMR 分析具有挑战性。在可以改善这种情况的同位素标记方法中,分段同位素标记是简化 NMR 谱并保留高分辨率结构信息的合适策略。然而,由于疏水的蛋白质片段不溶,并且需要精心去除连接副产物,因此整合膜蛋白内的蛋白质连接较为复杂。在这里,我们展示了一种稳定的分裂内含肽系统可用于在变性条件下快速和高产地进行整合膜蛋白的蛋白质转剪接。该设置允许在 NMR 研究中对折叠蛋白结构域进行分段同位素标记实验。我们表明,在去污剂胶束和脂质纳米盘中可以获得具有明显降低复杂性的高质量 NMR 谱。值得注意的是,纳米盘插入步骤特别选择连接和正确折叠的膜蛋白,并同时去除连接副产物。使用这种定制的工作流程,我们表明,只需两个分段同位素标记的膜蛋白样品就可以极大地促进高分辨率 NMR 结构测定。该方法将广泛适用于通过溶液和固态 NMR 以及其他有利于分段标记的结构方法对(膜)蛋白及其复合物进行结构和动力学研究。