Birch James, Kwan Tristan O C, Judge Peter J, Axford Danny, Aller Pierre, Butryn Agata, Reis Rosana I, Bada Juarez Juan F, Vinals Javier, Owen Robin L, Nango Eriko, Tanaka Rie, Tono Kensuke, Joti Yasumasa, Tanaka Tomoyuki, Owada Shigeki, Sugahara Michihiro, Iwata So, Orville Allen M, Watts Anthony, Moraes Isabel
Membrane Protein Laboratory, Diamond Light Source, Harwell Science and Innovation Campus, Didcot, Oxfordshire OX11 0DE, United Kingdom.
Research Complex at Harwell, Rutherford Appleton Laboratory, Harwell Science and Innovation Campus, Didcot, Oxfordshire OX11 0FA, United Kingdom.
J Appl Crystallogr. 2023 Aug 18;56(Pt 5):1361-1370. doi: 10.1107/S1600576723006428. eCollection 2023 Oct 1.
Serial crystallography has emerged as an important tool for structural studies of integral membrane proteins. The ability to collect data from micrometre-sized weakly diffracting crystals at room temperature with minimal radiation damage has opened many new opportunities in time-resolved studies and drug discovery. However, the production of integral membrane protein microcrystals in lipidic cubic phase at the desired crystal density and quantity is challenging. This paper introduces VIALS (versatile approach to high-density microcrystals in lipidic cubic phase for serial crystallography), a simple, fast and efficient method for preparing hundreds of microlitres of high-density microcrystals suitable for serial X-ray diffraction experiments at both synchrotron and free-electron laser sources. The method is also of great benefit for rational structure-based drug design as it facilitates crystal soaking and rapid determination of many co-crystal structures. Using the VIALS approach, room-temperature structures are reported of (i) the archaerhodopsin-3 protein in its dark-adapted state and 110 ns photocycle intermediate, determined to 2.2 and 1.7 Å, respectively, and (ii) the human A adenosine receptor in complex with two different ligands determined to a resolution of 3.5 Å.
串行晶体学已成为研究整合膜蛋白结构的重要工具。在室温下从微米级弱衍射晶体收集数据并使辐射损伤最小化的能力,为时间分辨研究和药物发现带来了许多新机遇。然而,在脂质立方相中以所需的晶体密度和数量生产整合膜蛋白微晶具有挑战性。本文介绍了VIALS(用于串行晶体学的脂质立方相中高密度微晶的通用方法),这是一种简单、快速且高效的方法,可制备数百微升适用于同步加速器和自由电子激光源的串行X射线衍射实验的高密度微晶。该方法对基于结构的合理药物设计也非常有益,因为它便于晶体浸泡并能快速确定许多共晶体结构。使用VIALS方法,报道了室温下的结构:(i) 处于暗适应状态和110纳秒光循环中间体的古紫质-3蛋白,分辨率分别为2.2 Å和1.7 Å;(ii) 与两种不同配体结合的人A腺苷受体,分辨率为3.5 Å。