Chen Bowen, Harrison Peter, Kargas Vasileios, Pollock Naomi, Ford Robert C, Prince Stephen M, Collins Richard F
Faculty of Biology, Medicine and Health, Smith Building, The University of Manchester, Dover Street, Manchester M13 9PL, UK.
The Membrane Protein Laboratory and the Electron Bio-Imaging Centre (eBIC), Diamond Light Source, Harwell Science & Innovation Campus, Oxford OX11 0DE, UK.
Biomolecules. 2025 Sep 12;15(9):1315. doi: 10.3390/biom15091315.
Detergent solubilisation remains the most commonly used but potentially problematic method to extract membrane proteins from lipid bilayers for Cryo-EM studies. Although recent advances have introduced excellent alternatives-such as amphipols, nanodiscs and SMALPs-the use of detergents is often necessary for intermediate steps. In this paper, we share our experiences working with detergent-solubilised samples within the modern Cryo-EM structural pipeline from the perspective of an EM specialist. Our aim is to inform novice users about potential challenges they may encounter. Drawing on specific examples from a variety of biological membrane systems, including Magnesium channels, lipopolysaccharide biosynthesis, and the human major facilitator superfamily transporters, we describe how the intrinsic properties of detergent-extracted samples can affect protein purification, Cryo-EM grid preparation (including the formation of vitreous ice) and the reconstitution of proteins into micelles. We also discuss how these unique characteristics can impact different stages of structural analysis and lead to complications in single-particle averaging software analysis. For each case, we present our insights into the underlying causes and suggest possible mitigations or alternative approaches.
对于冷冻电镜研究而言,去污剂增溶法仍是从脂质双层中提取膜蛋白最常用但可能存在问题的方法。尽管最近的进展引入了一些出色的替代方法,如两性离子聚合物、纳米圆盘和稳定膜锚定脂质体蛋白,但在中间步骤中通常仍需要使用去污剂。在本文中,我们从电子显微镜专家的角度分享了在现代冷冻电镜结构流程中处理去污剂增溶样品的经验。我们的目的是告知新手用户他们可能遇到的潜在挑战。借助包括镁通道、脂多糖生物合成以及人类主要易化子超家族转运蛋白在内的各种生物膜系统的具体实例,我们描述了去污剂提取样品的内在特性如何影响蛋白质纯化、冷冻电镜网格制备(包括玻璃态冰的形成)以及蛋白质重构为胶束的过程。我们还讨论了这些独特特性如何影响结构分析的不同阶段,并导致单颗粒平均软件分析出现复杂情况。对于每种情况,我们阐述了对潜在原因的见解,并提出了可能的缓解措施或替代方法。