Factors affecting macromolecule orientations in thin films formed in cryo-EM.

IF 2.6 4区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Swati Yadav, Kutti R Vinothkumar
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引用次数: 0

Abstract

The formation of a vitrified thin film embedded with randomly oriented macromolecules is an essential prerequisite for cryogenic sample electron microscopy. Most commonly, this is achieved using the plunge-freeze method first described nearly 40 years ago. Although this is a robust method, the behaviour of different macromolecules shows great variation upon freezing and often needs to be optimized to obtain an isotropic, high-resolution reconstruction. For a macromolecule in such a film, the probability of encountering the air-water interface in the time between blotting and freezing and adopting preferred orientations is very high. 3D reconstruction using preferentially oriented particles often leads to anisotropic and uninterpretable maps. Currently, there are no general solutions to this prevalent issue, but several approaches largely focusing on sample preparation with the use of additives and novel grid modifications have been attempted. In this study, the effect of physical and chemical factors on the orientations of macromolecules was investigated through an analysis of selected well studied macromolecules, and important parameters that determine the behaviour of proteins on cryo-EM grids were revealed. These insights highlight the nature of the interactions that cause preferred orientations and can be utilized to systematically address orientation bias for any given macromolecule and to provide a framework to design small-molecule additives to enhance sample stability and behaviour.

影响冷冻电镜形成的薄膜中大分子取向的因素。
形成玻璃化薄膜并嵌入随机取向的大分子是低温样品电子显微镜的基本前提。最常见的方法是采用近 40 年前首次描述的冷冻法。虽然这是一种稳健的方法,但不同大分子在冷冻时的行为变化很大,通常需要进行优化才能获得各向同性的高分辨率重构。对于这种薄膜中的大分子来说,在印迹和冷冻之间的时间内遇到空气-水界面并采用优先取向的概率非常高。使用优先取向颗粒进行三维重建往往会导致各向异性和无法解读的图谱。目前,还没有解决这一普遍问题的通用方法,但已经尝试了几种方法,主要集中在使用添加剂和新型网格修改来制备样品。在本研究中,通过分析选定的、经过深入研究的大分子,研究了物理和化学因素对大分子取向的影响,并揭示了决定蛋白质在低温电子显微镜网格上行为的重要参数。这些见解突出了导致优先取向的相互作用的性质,可用于系统地解决任何给定大分子的取向偏差问题,并为设计小分子添加剂提供一个框架,以提高样品的稳定性和性能。
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 D, Structural Biology
Acta Crystallographica. Section D, Structural Biology BIOCHEMICAL RESEARCH METHODSBIOCHEMISTRY &-BIOCHEMISTRY & MOLECULAR BIOLOGY
CiteScore
4.50
自引率
13.60%
发文量
216
期刊介绍: Acta Crystallographica Section D welcomes the submission of articles covering any aspect of structural biology, with a particular emphasis on the structures of biological macromolecules or the methods used to determine them. Reports on new structures of biological importance may address the smallest macromolecules to the largest complex molecular machines. These structures may have been determined using any structural biology technique including crystallography, NMR, cryoEM and/or other techniques. The key criterion is that such articles must present significant new insights into biological, chemical or medical sciences. The inclusion of complementary data that support the conclusions drawn from the structural studies (such as binding studies, mass spectrometry, enzyme assays, or analysis of mutants or other modified forms of biological macromolecule) is encouraged. Methods articles may include new approaches to any aspect of biological structure determination or structure analysis but will only be accepted where they focus on new methods that are demonstrated to be of general applicability and importance to structural biology. Articles describing particularly difficult problems in structural biology are also welcomed, if the analysis would provide useful insights to others facing similar problems.
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