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VMXm——钻石光源的一条亚微米聚焦大分子晶体学光束线。

VMXm - A sub-micron focus macromolecular crystallography beamline at Diamond Light Source.

作者信息

Warren Anna J, Trincao Jose, Crawshaw Adam D, Beale Emma V, Duller Graham, Stallwood Andrew, Lunnon Mark, Littlewood Richard, Prescott Adam, Foster Andrew, Smith Neil, Rehm Guenther, Gayadeen Sandira, Bloomer Christopher, Alianelli Lucia, Laundy David, Sutter John, Cahill Leo, Evans Gwyndaf

机构信息

Diamond Light Source, Harwell Science and Innovation Campus, Didcot, Oxfordshire OX11 0DE, United Kingdom.

出版信息

J Synchrotron Radiat. 2024 Nov 1;31(Pt 6):1593-1608. doi: 10.1107/S1600577524009160. Epub 2024 Oct 30.

Abstract

VMXm joins the suite of operational macromolecular crystallography beamlines at Diamond Light Source. It has been designed to optimize rotation data collections from protein crystals less than 10 µm and down to below 1 µm in size. The beamline has a fully focused beam of 0.3 × 2.3 µm (vertical × horizontal) with a tuneable energy range (6-28 keV) and high flux (1.6 × 10 photons s at 12.5 keV). The crystals are housed within a vacuum chamber to minimize background scatter from air. Crystals are plunge-cooled on cryo-electron microscopy grids, allowing much of the liquid surrounding the crystals to be removed. These factors improve the signal-to-noise during data collection and the lifetime of the microcrystals can be prolonged by exploiting photoelectron escape. A novel in vacuo sample environment has been designed which also houses a scanning electron microscope to aid with sample visualization. This combination of features at VMXm allows measurements at the physical limits of X-ray crystallography on biomacromolecules to be explored and exploited.

摘要

VMXm是钻石光源(Diamond Light Source)的一系列用于大分子晶体学操作的光束线之一。它的设计目的是优化对尺寸小于10微米甚至小至1微米以下的蛋白质晶体进行旋转数据收集。该光束线具有0.3×2.3微米(垂直×水平)的完全聚焦光束,能量范围可调(6 - 28 keV)且通量高(在12.5 keV时为1.6×10光子/秒)。晶体置于真空室内,以尽量减少来自空气的背景散射。晶体在低温电子显微镜网格上进行骤冷,从而去除晶体周围的大部分液体。这些因素改善了数据收集过程中的信噪比,并且通过利用光电子逸出可以延长微晶的寿命。已经设计了一种新型的真空样品环境,其中还配备了扫描电子显微镜以辅助样品可视化。VMXm的这些特性组合使得能够探索和利用在生物大分子X射线晶体学物理极限下的测量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2cf8/11542661/d95484bfe213/s-31-01593-fig1.jpg

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