New cryo-EM methods to capture endogenous complexes in multiple functional states at atomic resolution

Hong Zhou
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Abstract

The last decade has witnessed advances in high-resolution cryoEM “revolutionizing” structural biology; as such, cryoEM has become a highly sought-after means of biochemical and biomedical investigations. Results from cryoEM are beginning to significantly enhance our understanding of the cellular processes responsible for maintenance, transmission and expression of genetic information at the atomic level. At the heart of these processes lie macromolecular complexes, within and outside the cell, which can now be studied by cryoEM. Understanding how and why these complexes function relies on visualizing their three-dimensional (3D) structures at their endogenous and multiple functional states. Towards this end, we have developed an integrative proteomics cryoEM methods to determine atomic structures of native cellular complexes, sub - particle refinement and nucleic acid modeling methods to model genomic RNA and DNA in action. Of particular note, our cryoID method (Ho et al., Nat Methods, 2020) allows determination of atomic structures of endogenous complexes in cellular milieu, capturing their multiple states, including those in their acts of carrying out their functions. Applications of cryoID has enabled atomic structure determination of previously intractable biological systems from cellular milieu and membrane.
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以原子分辨率捕捉多种功能态内源复合物的新型低温电子显微镜方法
过去十年间,高分辨率冷冻电镜技术的发展 "彻底改变 "了结构生物学;因此,冷冻电镜已成为一种备受青睐的生化和生物医学研究手段。低温电子显微镜的研究成果开始显著提高我们对细胞在原子水平上维护、传输和表达遗传信息过程的认识。这些过程的核心是细胞内外的大分子复合物,现在可以用冷冻电镜对其进行研究。要了解这些复合物如何以及为何起作用,就必须对它们在内源性和多种功能状态下的三维(3D)结构进行可视化。为此,我们开发了一种综合蛋白质组学冷冻电镜方法,用于确定原生细胞复合物的原子结构、亚微粒重整和核酸建模方法,以模拟基因组 RNA 和 DNA 的作用。特别值得注意的是,我们的低温显微镜方法(Ho 等人,Nat Methods,2020 年)可以确定细胞环境中内源复合物的原子结构,捕捉它们的多种状态,包括执行功能时的状态。CryoID 的应用使以前难以从细胞环境和膜中确定的生物系统的原子结构成为可能。
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