Efremov Rouslan G, Gatsogiannis Christos, Raunser Stefan
Vrije Universiteit Brussel, Brussels, Belgium.
Max Planck Institute of Molecular Physiology, Dortmund, Germany.
Methods Enzymol. 2017;594:1-30. doi: 10.1016/bs.mie.2017.05.007. Epub 2017 Jul 19.
The "resolution revolution" in electron cryomicroscopy (cryo-EM) profoundly changed structural biology of membrane proteins. Near-atomic structures of medium size to large membrane protein complexes can now be determined without crystallization. This significantly accelerates structure determination and also the visualization of small bound ligands. There is an additional advantage: the structure of membrane proteins can now be studied in their native or nearly native lipid bilayer environment. A popular lipid bilayer mimetic are lipid nanodiscs, which have been thoroughly characterized and successfully utilized in multiple applications. Here, we provide a guide for using lipid nanodiscs as a tool for single-particle cryo-EM of membrane proteins. We discuss general methodological aspects and specific challenges of protein reconstitution into lipid nanodiscs and high-resolution structure determination of the nanodisc-embedded complexes. Furthermore, we describe in detail case studies of two successful applications of nanodiscs in cryo-EM, namely, the structure determination of the rabbit ryanodine receptor, RyR1, and the pore-forming TcdA1 toxin subunit from Photorhabdus luminescens. We discuss cryo-EM-specific hurdles concerning sample homogeneity, distribution of reconstituted particles in vitreous ice, and solutions to overcome them.
电子冷冻显微镜(cryo-EM)的“分辨率革命”深刻改变了膜蛋白的结构生物学。现在,无需结晶就能确定中等大小到大型膜蛋白复合物的近原子结构。这显著加快了结构解析的速度,也加快了小结合配体的可视化。还有一个额外的优势:现在可以在天然或近乎天然的脂质双层环境中研究膜蛋白的结构。一种流行的脂质双层模拟物是脂质纳米盘,它已得到充分表征并成功应用于多种用途。在此,我们提供一份使用脂质纳米盘作为膜蛋白单颗粒冷冻电镜工具的指南。我们讨论了将蛋白质重构到脂质纳米盘中的一般方法学方面以及具体挑战,以及纳米盘嵌入复合物的高分辨率结构解析。此外,我们详细描述了纳米盘在冷冻电镜中的两个成功应用案例研究,即兔兰尼碱受体RyR1的结构解析以及来自发光杆菌的成孔TcdA1毒素亚基的结构解析。我们讨论了与样品均一性、重构颗粒在玻璃态冰中的分布有关的冷冻电镜特定障碍以及克服这些障碍的解决方案。