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以接近原子分辨率可视化人类60S核糖体亚基的修饰图谱。

Visualizing the modification landscape of the human 60S ribosomal subunit at close to atomic resolution.

作者信息

Wiechert Franziska, Unbehaun Anett, Sprink Thiemo, Seibel Helena, Bürger Jörg, Loerke Justus, Mielke Thorsten, Diebolder Christoph A, Schacherl Magdalena, Spahn Christian M T

机构信息

Institute of Medical Physics and Biophysics, Charité - Universitätsmedizin Berlin, corporate member of Freie Universität Berlin and Humboldt-Universität zu Berlin, Charitéplatz 1, 10117 Berlin, Germany.

Core Facility for Cryo-Electron Microscopy (CFcryoEM), Charité - Universitätsmedizin Berlin, corporate member of Freie Universität Berlin and Humboldt-Universität zu Berlin, Robert-Rössle-Str. 10, 13125 Berlin, Germany.

出版信息

Nucleic Acids Res. 2025 Jan 7;53(1). doi: 10.1093/nar/gkae1191.

Abstract

Chemical modifications of ribosomal RNAs (rRNAs) and proteins expand their topological repertoire, and together with the plethora of bound ligands, fine-tune ribosomal function. Detailed knowledge of this natural composition provides important insights into ribosome genesis and function and clarifies some aspects of ribosomopathies. The discovery of new structural properties and functional aspects of ribosomes has gone hand in hand with cryo-electron microscopy (cryo-EM) and its technological development. In line with the ability to visualize atomic details - a prerequisite for identifying chemical modifications and ligands in cryo-EM maps - in this work we present the structure of the 60S ribosomal subunit from HeLa cells at the very high global resolution of 1.78 Å. We identified 113 rRNA modifications and four protein modifications including uL2-Hisβ-ox216, which stabilizes the local structure near the peptidyl transferase centre via an extended hydrogen-bonding network. We can differentiate metal ions Mg2+ and K+, polyamines spermine, spermidine and putrescine and identify thousands of water molecules binding to the 60S subunit. Approaching atomic resolution cryo-EM has become a powerful tool to examine fine details of macromolecular structures that will expand our knowledge about translation and other biological processes in the future and assess the variability of the chemical space due to differences between species/tissues or varying physicochemical environment.

摘要

核糖体RNA(rRNA)和蛋白质的化学修饰扩展了它们的拓扑结构,再加上大量结合的配体,对核糖体功能进行微调。对这种天然组成的详细了解为核糖体的起源和功能提供了重要见解,并阐明了核糖体病的一些方面。核糖体新结构特性和功能方面的发现与冷冻电子显微镜(cryo-EM)及其技术发展齐头并进。鉴于能够可视化原子细节——这是在冷冻电镜图谱中识别化学修饰和配体的先决条件——在这项工作中,我们展示了来自HeLa细胞的60S核糖体亚基在1.78 Å的超高整体分辨率下的结构。我们鉴定出113种rRNA修饰和4种蛋白质修饰,包括uL2-Hisβ-ox216,它通过扩展的氢键网络稳定肽基转移酶中心附近的局部结构。我们能够区分金属离子Mg2+和K+、多胺精胺、亚精胺和腐胺,并识别与60S亚基结合的数千个水分子。接近原子分辨率的冷冻电镜已成为研究大分子结构精细细节的强大工具,这将在未来扩展我们对翻译和其他生物过程的认识,并评估由于物种/组织差异或不同物理化学环境导致的化学空间变异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6135/11724314/c4ae23638ddd/gkae1191figgra1.jpg

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