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Electron microscopy methods to overcome the challenges of structural heterogeneity and preferred orientations in small (sub-500 kDa) macromolecular complexes

机译:电子显微镜方法克服了小(小于500 kDa)大分子复合物中结构异质性和优选取向的挑战

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摘要

While cryo-EM imaging technology and software suites have led to a "resolution revolution", the poor reproducibility and inefficiency offered by current specimen preparation techniques remain challenges largely unexamined and under-prized. Regardless of camera or software proficiency, a poor-quality specimen will always produce an equivalently substandard 3D reconstruction. To further advance the high-resolution EM pipeline and establish quality control for grid specimens, we tested three techniques to assess optimum conditions for vitrification of small (<500kDa), multi-subunit biological macromolecular complexes.;We performed specimen optimization for a 300kDa, five-component, macromolecular complex, PRC2. PRC2 is a key regulator of gene silencing in eukaryotes and mutations in its catalytic subunit, Ezh2, are linked to a number of human cancers and degenerative diseases. To date, no high-resolution structure of the complete complex has been solved. PRC2 presents a number of unique challenges for the structural biologist, including its small size, highly flexible regions, and conformation heterogeneity. A high-resolution structure of PRC2 would provide unparalleled insight into the biochemical mechanisms that mediate gene silencing by methylation of histone tails. For these reasons, PRC2 is an ideal candidate for optimizing cryo-EM grid preparation techniques translatable to similar complexes and for future research.;Previous EM studies of PRC2 revealed a distinct preferred orientation when bound to carbon substrates, necessitating the collection of tens of thousands of images to generate a complete structure containing high-resolution features. To overcome this impediment, we experimented with two other grid specimen preparation techniques. First, we vitrified solution-suspended PRC2 in open holes on carbon mesh support. Despite modifications of chemical and physical buffer and substrate parameters to stabilize the complex, denaturation upon surface binding at the air-water interface and dissociation of the complex during vitrification proved insurmountable. We next tested a method of affinity binding to a streptavidin monolayer substrate covering the holes of a carbon mesh support. We found that chemically biotinylated PRC2 was intact, monodisperse, and bound the grid in random orientations, all factors critical to high-resolution cryo-EM structure determination. Negative stain EM analysis revealed a more even distribution of views for 3D reconstruction. From these results, we conclude that streptavidin monolayer substrates are an option for overcoming the obstacle of preferred orientations for small complexes and provide an easily reproducible protocol for grid preparation.
机译:尽管低温电磁成像技术和软件套件引发了“分辨率革命”,但当前的样品制备技术所提供的差的重现性和低效率仍然在很大程度上尚未得到审查和认可。无论照相机或软件的熟练程度如何,劣质标本总是会产生同等劣质的3D重建图像。为进一步推进高分辨率EM管道并建立网格标本的质量控制,我们测试了三种技术,以评估用于小型(<500kDa)多亚基生物大分子复合物玻璃化的最佳条件。我们对300kDa的标本进行了优化,五组分大分子复合物,PRC2。 PRC2是真核生物基因沉默的关键调控因子,其催化亚基Ezh2的突变与许多人类癌症和变性疾病有关。迄今为止,尚未解决完整复合体的高分辨率结构。 PRC2对结构生物学家提出了许多独特的挑战,包括其体积小,高度灵活的区域以及构象异质性。 PRC2的高分辨率结构将为通过组蛋白尾巴甲基化介导基因沉默的生化机制提供无与伦比的洞察力。由于这些原因,PRC2是优化可转换为类似配合物的低温EM网格制备技术以及进行未来研究的理想候选者;;先前的PRC2的EM研究表明,当与碳基质结合时,其取向明显不同,因此需要收集成千上万种图像生成包含高分辨率特征的完整结构。为了克服这一障碍,我们尝试了另外两种网格样品制备技术。首先,我们将溶液悬浮的PRC2玻璃化了碳网支架上的裸眼。尽管修改了化学和物理缓冲液以及底物参数以稳定配合物,但是在玻璃化过程中在空气-水界面处的表面结合变性和配合物的离解被证明是无法克服的。接下来,我们测试了亲和力结合至覆盖碳网载体孔的链霉亲和素单层底物的方法。我们发现化学生物素化的PRC2是完整的,单分散的,并以随机方向约束网格,所有这些因素对于高分辨率冷冻EM结构测定都是至关重要的。负染色EM分析显示3D重建的视图分布更均匀。从这些结果,我们得出结论,链霉亲和素单层底物是克服小型复合物优选取向障碍的一种选择,并为网格制备提供了易于再现的方案。

著录项

  • 作者

    Lipscomb, Dawn Michelle.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Biophysics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 44 p.
  • 总页数 44
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:54:25

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