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使用 DIALS 进行电子衍射数据处理。

Electron diffraction data processing with DIALS.

机构信息

Center for Cellular Imaging and NanoAnalytics (C-CINA), Biozentrum, University of Basel, Mattenstrasse 26, 4058 Basel, Switzerland.

Paul Scherrer Institute, 5232 Villigen PSI, Switzerland.

出版信息

Acta Crystallogr D Struct Biol. 2018 Jun 1;74(Pt 6):506-518. doi: 10.1107/S2059798318007726. Epub 2018 May 30.

Abstract

Electron diffraction is a relatively novel alternative to X-ray crystallography for the structure determination of macromolecules from three-dimensional nanometre-sized crystals. The continuous-rotation method of data collection has been adapted for the electron microscope. However, there are important differences in geometry that must be considered for successful data integration. The wavelength of electrons in a TEM is typically around 40 times shorter than that of X-rays, implying a nearly flat Ewald sphere, and consequently low diffraction angles and a high effective sample-to-detector distance. Nevertheless, the DIALS software package can, with specific adaptations, successfully process continuous-rotation electron diffraction data. Pathologies encountered specifically in electron diffraction make data integration more challenging. Errors can arise from instrumentation, such as beam drift or distorted diffraction patterns from lens imperfections. The diffraction geometry brings additional challenges such as strong correlation between lattice parameters and detector distance. These issues are compounded if calibration is incomplete, leading to uncertainty in experimental geometry, such as the effective detector distance and the rotation rate or direction. Dynamic scattering, absorption, radiation damage and incomplete wedges of data are additional factors that complicate data processing. Here, recent features of DIALS as adapted to electron diffraction processing are shown, including diagnostics for problematic diffraction geometry refinement, refinement of a smoothly varying beam model and corrections for distorted diffraction images. These novel features, combined with the existing tools in DIALS, make data integration and refinement feasible for electron crystallography, even in difficult cases.

摘要

电子衍射是一种相对新颖的方法,可替代 X 射线晶体学,用于从三维纳米级晶体中确定大分子的结构。连续旋转数据采集方法已被适应于电子显微镜。然而,在成功的数据集成中,必须考虑到几何形状的重要差异。TEM 中的电子波长通常比 X 射线短约 40 倍,这意味着近乎平坦的 Ewald 球,因此衍射角度较低,有效样品到探测器的距离较高。尽管如此,DIALS 软件包可以通过特定的适应,成功地处理连续旋转电子衍射数据。电子衍射中遇到的特殊病变使数据集成更具挑战性。误差可能来自仪器,例如束漂移或透镜缺陷导致的衍射图案变形。衍射几何形状带来了额外的挑战,例如晶格参数和探测器距离之间的强相关性。如果校准不完全,这些问题会更加复杂,导致实验几何形状的不确定性,例如有效探测器距离和旋转速率或方向。动态散射、吸收、辐射损伤和数据的不完全楔形是使数据处理复杂化的其他因素。本文展示了 DIALS 最近适应电子衍射处理的功能,包括用于有问题的衍射几何形状精修的诊断、对平滑变化的光束模型的精修以及对变形衍射图像的校正。这些新功能与 DIALS 中的现有工具相结合,使电子晶体学的数据集成和精修成为可能,即使在困难的情况下也是如此。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc79/6096487/4f2cb444637b/d-74-00506-fig1.jpg

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