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氯霉素通过直接和间接机制干扰 50S 核糖体亚基成熟。

Chloramphenicol Interferes with 50S Ribosomal Subunit Maturation via Direct and Indirect Mechanisms.

机构信息

Department of Systems Biology, School of Life Sciences, Southern University of Science and Technology, No. 1088 Xueyuan Avenue, Shenzhen 518055, China.

Institute for Biological Electron Microscopy, Southern University of Science and Technology, No. 1088 Xueyuan Avenue, Shenzhen 518055, China.

出版信息

Biomolecules. 2024 Sep 27;14(10):1225. doi: 10.3390/biom14101225.

Abstract

Chloramphenicol (CAM), a well-known broad-spectrum antibiotic, inhibits peptide bond formation in bacterial ribosomes. It has been reported to affect ribosome assembly mainly through disrupting the balance of ribosomal proteins. The present study investigates the multifaceted effects of CAM on the maturation of the 50S ribosomal subunit in (). Using label-free quantitative mass spectrometry (LFQ-MS), we observed that CAM treatment also leads to the upregulation of assembly factors. Further cryo-electron microscopy (cryo-EM) analysis of the ribosomal precursors characterized the CAM-treatment-accumulated pre-50S intermediates. Heterogeneous reconstruction identified 26 distinct pre-50S intermediates, which were categorized into nine main states based on their structural features. Our structural analysis highlighted that CAM severely impedes the formation of the central protuberance (CP), H89, and H58 during 50S ribosomal subunit maturation. The ELISA assay further demonstrated the direct binding of CAM to the ribosomal precursors, suggesting that the interference with 50S maturation occurs through a combination of direct and indirect mechanisms. These findings provide new insights into the mechanism of the action of CAM and provide a foundation for a better understanding of the assembly landscapes of the ribosome.

摘要

氯霉素(CAM)是一种著名的广谱抗生素,可抑制细菌核糖体中的肽键形成。据报道,它主要通过破坏核糖体蛋白的平衡来影响核糖体的组装。本研究探讨了 CAM 对 ()中 50S 核糖体亚基成熟的多方面影响。使用无标记定量质谱(LFQ-MS),我们观察到 CAM 处理还会导致组装因子的上调。对核糖体前体进行的低温电子显微镜(cryo-EM)分析进一步表征了 CAM 处理积累的前 50S 中间体。异质重构鉴定出 26 种不同的前 50S 中间体,根据其结构特征将其分为九个主要状态。我们的结构分析强调,CAM 严重阻碍了 50S 核糖体亚基成熟过程中中央突出物(CP)、H89 和 H58 的形成。ELISA 测定进一步证明了 CAM 与核糖体前体的直接结合,表明对 50S 成熟的干扰是通过直接和间接机制的结合发生的。这些发现为 CAM 的作用机制提供了新的见解,并为更好地理解核糖体的组装景观提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ba29/11505724/2f8d7cb033ac/biomolecules-14-01225-g001.jpg

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