Sjöstrand Dan, Diamanti Riccardo, Lundgren Camilla A K, Wiseman Benjamin, Högbom Martin
Stockholm Center for Biomembrane Research, Department of Biochemistry and Biophysics, Stockholm University, The Arrhenius Laboratories for Natural Sciences, Stockholm, SE-10691, Sweden.
Protein Sci. 2017 Aug;26(8):1653-1666. doi: 10.1002/pro.3196. Epub 2017 May 31.
Membrane proteins control a large number of vital biological processes and are often medically important-not least as drug targets. However, membrane proteins are generally more difficult to work with than their globular counterparts, and as a consequence comparatively few high-resolution structures are available. In any membrane protein structure project, a lot of effort is usually spent on obtaining a pure and stable protein preparation. The process commonly involves the expression of several constructs and homologs, followed by extraction in various detergents. This is normally a time-consuming and highly iterative process since only one or a few conditions can be tested at a time. In this article, we describe a rapid screening protocol in a 96-well format that largely mimics standard membrane protein purification procedures, but eliminates the ultracentrifugation and membrane preparation steps. Moreover, we show that the results are robustly translatable to large-scale production of detergent-solubilized protein for structural studies. We have applied this protocol to 60 proteins from an E. coli membrane protein library, in order to find the optimal expression, solubilization and purification conditions for each protein. With guidance from the obtained screening data, we have also performed successful large-scale purifications of several of the proteins. The protocol provides a rapid, low cost solution to one of the major bottlenecks in structural biology, making membrane protein structures attainable even for the small laboratory.
膜蛋白控制着大量重要的生物学过程,并且在医学上通常具有重要意义——尤其是作为药物靶点。然而,膜蛋白一般比其球状对应物更难处理,因此相对而言高分辨率结构较少。在任何膜蛋白结构项目中,通常会花费大量精力来获得纯净且稳定的蛋白质制剂。这个过程通常包括表达几种构建体和同源物,然后在各种去污剂中进行提取。这通常是一个耗时且高度迭代的过程,因为一次只能测试一种或几种条件。在本文中,我们描述了一种96孔板形式的快速筛选方案,该方案在很大程度上模仿了标准的膜蛋白纯化程序,但省去了超速离心和膜制备步骤。此外,我们表明这些结果能够可靠地转化为用于结构研究的去污剂溶解蛋白的大规模生产。我们已将此方案应用于来自大肠杆菌膜蛋白文库的60种蛋白质,以找到每种蛋白质的最佳表达、溶解和纯化条件。在获得的筛选数据的指导下,我们还成功地对其中几种蛋白质进行了大规模纯化。该方案为结构生物学中的一个主要瓶颈提供了一种快速、低成本的解决方案,使得即使是小实验室也能够获得膜蛋白结构。