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不同镁浓度下核糖体小亚基的扭曲结构研究

Structural Insights into the Distortion of the Ribosomal Small Subunit at Different Magnesium Concentrations.

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.

出版信息

Biomolecules. 2023 Mar 20;13(3):566. doi: 10.3390/biom13030566.

Abstract

Magnesium ions are abundant and play indispensable functions in the ribosome. A decrease in Mg concentration causes 70S ribosome dissociation and subsequent unfolding. Structural distortion at low Mg concentrations has been observed in an immature pre50S, while the structural changes in mature subunits have not yet been studied. Here, we purified the 30S subunits of cells under various Mg concentrations and analyzed their structural distortion by cryo-electron microscopy. Upon systematically interrogating the structural heterogeneity within the 1 mM Mg dataset, we observed 30S particles with different levels of structural distortion in the decoding center, h17, and the 30S head. Our model showed that, when the Mg concentration decreases, the decoding center distorts, starting from h44 and followed by the shifting of h18 and h27, as well as the dissociation of ribosomal protein S12. Mg deficiency also eliminates the interactions between h17, h10, h15, and S16, resulting in the movement of h17 towards the tip of h6. More flexible structures were observed in the 30S head and platform, showing high variability in these regions. In summary, the structures resolved here showed several prominent distortion events in the decoding center and h17. The requirement for Mg in ribosomes suggests that the conformational changes reported here are likely shared due to a lack of cellular Mg in all domains of life.

摘要

镁离子在核糖体中含量丰富,发挥着不可或缺的作用。镁浓度的降低会导致 70S 核糖体解离和随后的解折叠。在不成熟的 pre50S 中观察到低镁浓度下的结构扭曲,而成熟亚基的结构变化尚未得到研究。在这里,我们在各种镁浓度下纯化了 细胞的 30S 亚基,并通过冷冻电子显微镜分析了它们的结构扭曲。通过系统地检测 1mM Mg 数据集内的结构异质性,我们观察到在解码中心、h17 和 30S 头部具有不同程度结构扭曲的 30S 颗粒。我们的模型表明,当镁浓度降低时,解码中心开始从 h44 扭曲,并伴随着 h18 和 h27 的移动以及核糖体蛋白 S12 的解离。镁缺乏也消除了 h17、h10、h15 和 S16 之间的相互作用,导致 h17 向 h6 的尖端移动。在 30S 头部和平台观察到更灵活的结构,这些区域的变异性很高。总之,这里解析的结构显示了解码中心和 h17 中存在几个明显的扭曲事件。核糖体对镁的需求表明,由于所有生命领域都缺乏细胞镁,报告的构象变化可能是共同的。

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