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Automatic crystal centring procedure at the SSRF macromolecular crystallography beamline

机译:SSRF大分子晶体学光束线的自动晶体定心程序

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X-ray diffraction is a common technique for determining crystal structures. The average time needed for the solution of a protein structure has been drastically reduced by a number of recent experimental and theoretical developments. Since high-throughput protein crystallography benefits from full automation of all steps that are carried out on a synchrotron beamline, an automatic crystal centring procedure is important for crystallographic beamlines. Fully automatic crystal alignment involves the application of optical methods to identify the crystal and move it onto the rotation axis and into the X-ray beam. Crystal recognition has complex dependencies on the illumination, crystal size and viewing angles due to effects such as local shading, inter-reflections and the presence of antifreezing elements. Here, a rapid procedure for crystal centring with multiple cameras using region segment thresholding is reported. Firstly, a simple illumination-invariant loop recognition and classification model is used by slicing a low-magnification loop image into small region segments, then classifying the loop into different types and aligning it to the beam position using feature vectors of the region segments. Secondly, an edge detection algorithm is used to find the crystal sample in a high-magnification image using region segment thresholding. Results show that this crystal centring method is extremely successful under fluctuating light states as well as for poorly frozen and opaque samples. Moreover, this crystal centring procedure is successfully integrated into the enhanced Blu-Ice data collection system at beamline BL17U1 at the Shanghai Synchrotron Radiation Facility as a routine method for an automatic crystal screening procedure.
机译:X射线衍射是确定晶体结构的常用技术。最近的许多实验和理论发展极大地减少了解决蛋白质结构所需的平均时间。由于高通量蛋白质结晶学得益于在同步加速器束线上进行的所有步骤的完全自动化,因此自动晶体居中过程对于结晶束线非常重要。全自动晶体对准涉及光学方法的应用,以识别晶体并将其移至旋转轴和X射线束中。由于诸如局部阴影,相互反射和防冻元素的存在等影响,晶体识别对照明,晶体尺寸和视角具有复杂的依赖性。在这里,报告了使用区域分段阈值法使用多个摄像机进行晶体居中的快速过程。首先,通过将低放大倍率的环路图像切成小区域段,然后将环路分类为不同类型,并使用区域段的特征向量将其与光束位置对齐,来使用简单的照明不变环路识别和分类模型。其次,使用边缘检测算法使用区域分段阈值法在高放大率图像中查找晶体样本。结果表明,这种晶体定心方法在波动的光状态下以及冷冻效果差和不透明的样品中都非常成功。此外,该晶体对中程序已成功集成到上海同步辐射装置上光束线BL17U1的增强型Blu-Ice数据收集系统中,作为自动晶体筛选程序的常规方法。

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