Baxter Elizabeth L, Aguila Laura, Alonso-Mori Roberto, Barnes Christopher O, Bonagura Christopher A, Brehmer Winnie, Brunger Axel T, Calero Guillermo, Caradoc-Davies Tom T, Chatterjee Ruchira, Degrado William F, Fraser James S, Ibrahim Mohamed, Kern Jan, Kobilka Brian K, Kruse Andrew C, Larsson Karl M, Lemke Heinrik T, Lyubimov Artem Y, Manglik Aashish, McPhillips Scott E, Norgren Erik, Pang Siew S, Soltis S M, Song Jinhu, Thomaston Jessica, Tsai Yingssu, Weis William I, Woldeyes Rahel A, Yachandra Vittal, Yano Junko, Zouni Athina, Cohen Aina E
Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.
Linac Coherent Light Source, SLAC National Accelerator Laboratory, Menlo Park, CA 94025, USA.
Acta Crystallogr D Struct Biol. 2016 Jan;72(Pt 1):2-11. doi: 10.1107/S2059798315020847. Epub 2016 Jan 1.
Higher throughput methods to mount and collect data from multiple small and radiation-sensitive crystals are important to support challenging structural investigations using microfocus synchrotron beamlines. Furthermore, efficient sample-delivery methods are essential to carry out productive femtosecond crystallography experiments at X-ray free-electron laser (XFEL) sources such as the Linac Coherent Light Source (LCLS). To address these needs, a high-density sample grid useful as a scaffold for both crystal growth and diffraction data collection has been developed and utilized for efficient goniometer-based sample delivery at synchrotron and XFEL sources. A single grid contains 75 mounting ports and fits inside an SSRL cassette or uni-puck storage container. The use of grids with an SSRL cassette expands the cassette capacity up to 7200 samples. Grids may also be covered with a polymer film or sleeve for efficient room-temperature data collection from multiple samples. New automated routines have been incorporated into the Blu-Ice/DCSS experimental control system to support grids, including semi-automated grid alignment, fully automated positioning of grid ports, rastering and automated data collection. Specialized tools have been developed to support crystallization experiments on grids, including a universal adaptor, which allows grids to be filled by commercial liquid-handling robots, as well as incubation chambers, which support vapor-diffusion and lipidic cubic phase crystallization experiments. Experiments in which crystals were loaded into grids or grown on grids using liquid-handling robots and incubation chambers are described. Crystals were screened at LCLS-XPP and SSRL BL12-2 at room temperature and cryogenic temperatures.
用于安装并从多个小尺寸且对辐射敏感的晶体收集数据的高通量方法,对于支持使用微聚焦同步加速器光束线进行具有挑战性的结构研究非常重要。此外,高效的样品输送方法对于在诸如直线加速器相干光源(LCLS)等X射线自由电子激光(XFEL)源上开展高效的飞秒晶体学实验至关重要。为满足这些需求,已开发出一种高密度样品网格,它可用作晶体生长和衍射数据收集的支架,并用于在同步加速器和XFEL源上基于测角仪的高效样品输送。单个网格包含75个安装端口,可适配于SSRL样品盒或单盘存储容器内。将网格与SSRL样品盒配合使用可将样品盒容量扩展至7200个样品。网格也可以覆盖聚合物薄膜或套筒,以便从多个样品进行高效的室温数据收集。Blu-Ice/DCSS实验控制系统已纳入新的自动化程序以支持网格,包括半自动网格对齐、网格端口的全自动定位、扫描和自动数据收集。已开发出专门工具来支持在网格上进行结晶实验,包括通用适配器,它允许商用液体处理机器人填充网格,以及培养箱,它支持气相扩散和脂质立方相结晶实验。本文描述了使用液体处理机器人和培养箱将晶体装载到网格中或在网格上生长的实验。在LCLS-XPP和SSRL BL12-2上于室温及低温下对晶体进行了筛选。