Fast event-based electron counting for small-molecule structure determination by MicroED.

IF 0.7 4区 化学 Q4 CHEMISTRY, MULTIDISCIPLINARY
Niko Vlahakis, Songrong Qu, Logan S Richards, Lygia Silva de Moraes, Duilio Cascio, Hosea M Nelson, Jose A Rodriguez
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引用次数: 0

Abstract

Electron counting helped realize the resolution revolution in single-particle cryoEM and is now accelerating the determination of MicroED structures. Its advantages are best demonstrated by new direct electron detectors capable of fast (kilohertz) event-based electron counting (EBEC). This strategy minimizes the inaccuracies introduced by coincidence loss (CL) and promises rapid determination of accurate structures. We used the Direct Electron Apollo camera to leverage EBEC technology for MicroED data collection. Given its ability to count single electrons, the Apollo collects high-quality MicroED data from organic small-molecule crystals illuminated with incident electron beam flux densities as low as 0.01-0.045 e-2/s. Under even the lowest flux density (0.01 e-2/s) condition, fast EBEC data produced ab initio structures of a salen ligand (268 Da) and biotin (244 Da). Each structure was determined from a 100° wedge of data collected from a single crystal in as few as 50 s, with a delivered fluence of only ∼0.5 e-2. Fast EBEC data collected with a fluence of 2.25 or 3.33 e-2 also facilitated a 1.5 Å structure of thiostrepton (1665 Da). While refinement of these structures appeared unaffected by CL, a CL adjustment applied to EBEC data further improved the distribution of intensities measured from the salen ligand and biotin crystals. However, CL adjustment only marginally improved the refinement of their corresponding structures, signaling the already high counting accuracy of detectors with counting rates in the kilohertz range. Overall, by delivering low-dose structure-worthy data, fast EBEC collection strategies open new possibilities for high-throughput MicroED.

MicroED快速事件电子计数法测定小分子结构。
电子计数帮助实现了单粒子低温电子显微镜的分辨率革命,现在正在加速MicroED结构的测定。新的直接电子探测器能够快速(千赫兹)基于事件的电子计数(EBEC),最好地证明了它的优点。该策略最大限度地减少了由重合损失(CL)引入的不准确性,并承诺快速确定准确的结构。我们使用直接电子阿波罗相机来利用EBEC技术进行MicroED数据收集。考虑到其计数单电子的能力,阿波罗号在入射电子束密度低至0.01-0.045 e-/Å2/s的情况下,从有机小分子晶体中收集高质量的MicroED数据。即使在最低通量密度(0.01 e-/Å2/s)条件下,快速EBEC数据也能从头计算出salen配体(268 Da)和生物素(244 Da)的结构。每个结构都是在50秒内从单晶收集的100°楔形数据中确定的,传递的影响仅为~ 0.5 e-/Å2。在2.25或3.33 e-/Å2的影响下收集的快速EBEC数据也促进了硫链菌的1.5 Å结构(1665 Da)。虽然这些结构的细化没有受到CL的影响,但应用于EBEC数据的CL调整进一步改善了从salen配体和生物素晶体测量的强度分布。然而,CL调整只略微改善了相应结构的精细化,表明计数率在千赫兹范围内的探测器已经很高的计数精度。总的来说,通过提供低剂量的具有结构价值的数据,快速EBEC收集策略为高通量MicroED开辟了新的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Acta Crystallographica Section C Structural Chemistry
Acta Crystallographica Section C Structural Chemistry CHEMISTRY, MULTIDISCIPLINARYCRYSTALLOGRAPH-CRYSTALLOGRAPHY
CiteScore
1.60
自引率
12.50%
发文量
148
期刊介绍: Acta Crystallographica Section C: Structural Chemistry is continuing its transition to a journal that publishes exciting science with structural content, in particular, important results relating to the chemical sciences. Section C is the journal of choice for the rapid publication of articles that highlight interesting research facilitated by the determination, calculation or analysis of structures of any type, other than macromolecular structures. Articles that emphasize the science and the outcomes that were enabled by the study are particularly welcomed. Authors are encouraged to include mainstream science in their papers, thereby producing manuscripts that are substantial scientific well-rounded contributions that appeal to a broad community of readers and increase the profile of the authors.
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