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一种用于分离核糖体及翻译机制以进行结构和功能研究的快速、简便且经济的方法。

A rapid, simple, and economical method for the isolation of ribosomes and translational machinery for structural and functional studies.

作者信息

Erath Jessey, Kemper Danielle, Mugo Elisha, Jacoby Alex, Valenzuela Elizabeth, Jungers Courtney F, Beatty Wandy L, Hashem Yaser, Jovanovic Marko, Djuranovic Sergej, Pavlovic Djuranovic Slavica

机构信息

Department of Cell Biology and Physiology, Washington University School of Medicine, Saint Louis, MO, USA.

Department of Biological Sciences, Columbia University, New York, NY, USA.

出版信息

Nat Commun. 2025 Aug 5;16(1):7185. doi: 10.1038/s41467-025-62314-8.

Abstract

Ribosomes are RNA-protein complexes essential for protein synthesis and quality control. Traditional methods for ribosome isolation are labor-intensive, expensive, and require a substantial amount of biological material. In contrast, our method, RNA affinity purification using poly-lysine (RAPPL), provides a rapid, simple, and cost-effective alternative applicable to various species and types of starting material (cell lysates, whole cells, organs, or whole organisms). It is also compatible with traditional isolation techniques. Here, we describe the use of RAPPL for rapid isolation, functional screening, and structural analysis of ribosomes and associated factors. We also demonstrate the application of RAPPL in investigating ribosome-associated resistance mechanisms in uropathogenic Escherichia coli samples and generating a 2.7-Å cryoEM ribosome structure from Cryptococcus neoformans. By significantly reducing the amount of the starting biological material and the time required for isolation, RAPPL has the potential to facilitate the study of ribosomal function, interactions, and antibiotic resistance and provide a versatile platform for academic, clinical, and industrial research.

摘要

核糖体是蛋白质合成和质量控制所必需的RNA-蛋白质复合物。传统的核糖体分离方法劳动强度大、成本高,且需要大量生物材料。相比之下,我们的方法——使用聚赖氨酸的RNA亲和纯化(RAPPL),提供了一种快速、简单且经济高效的替代方法,适用于各种物种和起始材料类型(细胞裂解物、全细胞、器官或整个生物体)。它也与传统分离技术兼容。在这里,我们描述了使用RAPPL进行核糖体及相关因子的快速分离、功能筛选和结构分析。我们还展示了RAPPL在研究尿路致病性大肠杆菌样本中核糖体相关抗性机制以及从新生隐球菌生成2.7埃冷冻电镜核糖体结构方面的应用。通过显著减少起始生物材料的量和分离所需的时间,RAPPL有潜力促进核糖体功能、相互作用和抗生素抗性的研究,并为学术、临床和工业研究提供一个通用平台。

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