Small but mighty: the power of microcrystals in structural biology

IF 2.9 2区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
IUCrJ Pub Date : 2025-05-01 DOI:10.1107/S2052252525001484
Courtney J. Tremlett , Jack Stubbs , William S. Stuart , Patrick D. Shaw Stewart , Jonathan West , Allen M. Orville , Ivo Tews , Nicholas J. Harmer
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引用次数: 0

Abstract

Developments in macromolecular crystallography now allow the use of microcrystals for structural analysis through advanced beamlines and techniques such as microcrystal electron diffraction and room-temperature crystallography. This review addresses methods of matching microcrystal preparation and sample delivery. The use of microcrystals enhances the possibilities in fields such as time-resolved crystallography.
Advancements in macromolecular crystallography, driven by improved sources and cryocooling techniques, have enabled the use of increasingly smaller crystals for structure determination, with microfocus beamlines now widely accessible. Initially developed for challenging samples, these techniques have culminated in advanced beamlines such as VMXm. Here, an in vacuo sample environment improves the signal-to-noise ratio in X-ray diffraction experiments, and thus enables the use of submicrometre crystals. The advancement of techniques such as microcrystal electron diffraction (MicroED) for atomic-level insights into charged states and hydrogen positions, along with room-temperature crystallography to observe physiological states via serial crystallography, has driven a resurgence in the use of microcrystals. Reproducibly preparing small crystals, especially from samples that typically yield larger crystals, requires considerable effort, as no one singular approach guarantees optimal crystals for every technique. This review discusses methods for generating such small crystals, including mechanical crushing and batch crystallization with seeding, and evaluates their compatibility with microcrystal data-collection modalities. Additionally, we examine sample-delivery methods, which are crucial for selecting appropriate crystallization strategies. Establishing reliable protocols for sample preparation and delivery opens new avenues for macromolecular crystallography, particularly in the rapidly progressing field of time-resolved crystallography.
小而强大:微晶体在结构生物学中的力量。
在改进的光源和低温冷却技术的推动下,大分子晶体学的进步使得越来越小的晶体能够用于结构测定,微聚焦光束线现在已经广泛使用。最初是为具有挑战性的样品开发的,这些技术在先进的光束线(如VMXm)中达到了顶峰。在这里,真空样品环境提高了x射线衍射实验中的信噪比,从而使亚微米晶体的使用成为可能。微晶体电子衍射(MicroED)等技术的进步,可以在原子水平上观察带电状态和氢的位置,以及通过连续晶体学观察生理状态的室温晶体学,推动了微晶体应用的复苏。可重复性地制备小晶体,特别是从通常产生较大晶体的样品中制备小晶体,需要相当大的努力,因为没有一种单一的方法可以保证每种技术都能获得最佳晶体。本文讨论了产生这种小晶体的方法,包括机械破碎和种子分批结晶,并评估了它们与微晶体数据收集方式的兼容性。此外,我们研究了样品递送方法,这对于选择适当的结晶策略至关重要。建立可靠的样品制备和递送方案为大分子晶体学开辟了新的途径,特别是在快速发展的时间分辨晶体学领域。
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
IUCrJ
IUCrJ CHEMISTRY, MULTIDISCIPLINARYCRYSTALLOGRAPH-CRYSTALLOGRAPHY
CiteScore
7.50
自引率
5.10%
发文量
95
审稿时长
10 weeks
期刊介绍: IUCrJ is a new fully open-access peer-reviewed journal from the International Union of Crystallography (IUCr). The journal will publish high-profile articles on all aspects of the sciences and technologies supported by the IUCr via its commissions, including emerging fields where structural results underpin the science reported in the article. Our aim is to make IUCrJ the natural home for high-quality structural science results. Chemists, biologists, physicists and material scientists will be actively encouraged to report their structural studies in IUCrJ.
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