Bowler Matthew W, Guijarro Matias, Petitdemange Sebastien, Baker Isabel, Svensson Olof, Burghammer Manfred, Mueller-Dieckmann Christoph, Gordon Elspeth J, Flot David, McSweeney Sean M, Leonard Gordon A
Structural Biology Group, European Synchrotron Radiation Facility, 6 Rue Jules Horowitz, F-38043 Grenoble, France.
Acta Crystallogr D Biol Crystallogr. 2010 Aug;66(Pt 8):855-64. doi: 10.1107/S0907444910019591. Epub 2010 Jul 9.
Crystals of biological macromolecules often exhibit considerable inter-crystal and intra-crystal variation in diffraction quality. This requires the evaluation of many samples prior to data collection, a practice that is already widespread in macromolecular crystallography. As structural biologists move towards tackling ever more ambitious projects, new automated methods of sample evaluation will become crucial to the success of many projects, as will the availability of synchrotron-based facilities optimized for high-throughput evaluation of the diffraction characteristics of samples. Here, two examples of the types of advanced sample evaluation that will be required are presented: searching within a sample-containing loop for microcrystals using an X-ray beam of 5 microm diameter and selecting the most ordered regions of relatively large crystals using X-ray beams of 5-50 microm in diameter. A graphical user interface developed to assist with these screening methods is also presented. For the case in which the diffraction quality of a relatively large crystal is probed using a microbeam, the usefulness and implications of mapping diffraction-quality heterogeneity (diffraction cartography) are discussed. The implementation of these techniques in the context of planned upgrades to the ESRF's structural biology beamlines is also presented.
生物大分子晶体在衍射质量方面常常表现出显著的晶间和晶内差异。这就需要在数据收集之前对许多样品进行评估,这种做法在大分子晶体学中已经很普遍。随着结构生物学家着手开展越来越雄心勃勃的项目,新的自动化样品评估方法对于许多项目的成功将变得至关重要,为高通量评估样品衍射特性而优化的基于同步加速器的设施的可用性也同样重要。在此,给出了两种所需的先进样品评估类型的示例:使用直径为5微米的X射线束在装有样品的环中搜索微晶,以及使用直径为5 - 50微米的X射线束选择相对较大晶体中最有序的区域。还展示了为辅助这些筛选方法而开发的图形用户界面。对于使用微束探测相对较大晶体的衍射质量的情况,讨论了绘制衍射质量异质性图谱(衍射成像)的用途和意义。还介绍了在欧洲同步辐射装置(ESRF)结构生物学光束线计划升级的背景下实施这些技术的情况。