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使用单反射单毛细管光学进行微晶体学研究。

Microcrystallography using single-bounce monocapillary optics.

机构信息

MacCHESS (Macromolecular Diffraction Facility at CHESS), Ithaca, NY, USA.

出版信息

J Synchrotron Radiat. 2010 Mar;17(2):227-36. doi: 10.1107/S0909049509053564. Epub 2010 Jan 19.

Abstract

X-ray microbeams have become increasingly valuable in protein crystallography. A number of synchrotron beamlines worldwide have adapted to handling smaller and more challenging samples by providing a combination of high-precision sample-positioning hardware, special visible-light optics for sample visualization, and small-diameter X-ray beams with low background scatter. Most commonly, X-ray microbeams with diameters ranging from 50 microm to 1 microm are produced by Kirkpatrick and Baez mirrors in combination with defining apertures and scatter guards. A simple alternative based on single-bounce glass monocapillary X-ray optics is presented. The basic capillary design considerations are discussed and a practical and robust implementation that capitalizes on existing beamline hardware is presented. A design for mounting the capillary is presented which eliminates parasitic scattering and reduces deformations of the optic to a degree suitable for use on next-generation X-ray sources. Comparison of diffraction data statistics for microcrystals using microbeam and conventional aperture-collimated beam shows that capillary-focused beam can deliver significant improvement. Statistics also confirm that the annular beam profile produced by the capillary optic does not impact data quality in an observable way. Examples are given of new structures recently solved using this technology. Single-bounce monocapillary optics can offer an attractive alternative for retrofitting existing beamlines for microcrystallography.

摘要

X 射线微束在蛋白质晶体学中变得越来越重要。世界上许多同步加速器光束线通过提供高精度的样品定位硬件、用于样品可视化的特殊可见光光学器件以及具有低背景散射的小直径 X 射线束,已经适应了处理更小和更具挑战性的样品。最常见的是,直径为 50 微米至 1 微米的 X 射线微束是通过 Kirkpatrick 和 Baez 反射镜与定义孔径和散射保护装置组合产生的。本文提出了一种基于单反射玻璃单毛细管 X 射线光学器件的简单替代方案。讨论了基本毛细管设计注意事项,并提出了一种实用且坚固的实施方式,该方式利用了现有的光束线硬件。提出了一种用于安装毛细管的设计方案,该方案消除了寄生散射,并将光学器件的变形程度降低到适合下一代 X 射线源使用的程度。使用微束和常规孔径准直光束对微晶体的衍射数据统计进行比较,结果表明毛细管聚焦光束可以显著提高数据质量。统计数据还证实,毛细管光学器件产生的环形光束轮廓不会以可观察的方式影响数据质量。本文给出了最近使用该技术解决的一些新结构的示例。单反射单毛细管光学器件可为现有的微晶体学光束线的改造提供一种有吸引力的替代方案。

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