Crossing boundaries of light microscopy resolution discerns novel assemblies in the nucleolus.

IF 2.1 4区 生物学 Q4 CELL BIOLOGY
Histochemistry and Cell Biology Pub Date : 2024-07-01 Epub Date: 2024-05-17 DOI:10.1007/s00418-024-02297-7
Carl C Correll, Udo Rudloff, Jeremy D Schmit, David A Ball, Tatiana S Karpova, Eric Balzer, Miroslav Dundr
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引用次数: 0

Abstract

The nucleolus is the largest membraneless organelle and nuclear body in mammalian cells. It is primarily involved in the biogenesis of ribosomes, essential macromolecular machines responsible for synthesizing all proteins required by the cell. The assembly of ribosomes is evolutionarily conserved and accounts for the most energy-consuming cellular process needed for cell growth, proliferation, and homeostasis. Despite the significance of this process, the substructural mechanistic principles of the nucleolar function in preribosome biogenesis have only recently begun to emerge. Here, we provide a new perspective using advanced super-resolution microscopy and single-molecule MINFLUX nanoscopy on the mechanistic principles governing ribosomal RNA-seeded nucleolar formation and the resulting tripartite suborganization of the nucleolus driven, in part, by liquid-liquid phase separation. With recent advances in the cryogenic electron microscopy (cryoEM) structural analysis of ribosome biogenesis intermediates, we highlight the current understanding of the step-wise assembly of preribosomal subunits in the nucleolus. Finally, we address how novel anticancer drug candidates target early steps in ribosome biogenesis to exploit these essential dependencies for growth arrest and tumor control.

Abstract Image

跨越光镜分辨率的界限,发现核仁中的新型组合。
核仁是哺乳动物细胞中最大的无膜细胞器和核体。它主要参与核糖体的生物生成,核糖体是负责合成细胞所需的所有蛋白质的重要大分子机器。核糖体的组装在进化过程中得以保留,是细胞生长、增殖和平衡所需的最耗能的细胞过程。尽管这一过程意义重大,但核小体在前核糖体生物发生过程中的功能的亚结构机制原理直到最近才开始出现。在这里,我们利用先进的超分辨显微镜和单分子 MINFLUX 纳米镜,从一个新的角度探讨了核糖体 RNA 种子核小体形成的机制原理,以及部分由液相-液相分离驱动的核小体三方亚组织。随着核糖体生物发生中间体低温电子显微镜(cryoEM)结构分析的最新进展,我们重点介绍了目前对核小球中前核糖体亚基分步组装的理解。最后,我们探讨了新型抗癌候选药物如何以核糖体生物发生的早期步骤为靶点,利用这些基本依赖关系来抑制生长和控制肿瘤。
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来源期刊
Histochemistry and Cell Biology
Histochemistry and Cell Biology 生物-细胞生物学
CiteScore
4.90
自引率
8.70%
发文量
112
审稿时长
1 months
期刊介绍: Histochemistry and Cell Biology is devoted to the field of molecular histology and cell biology, publishing original articles dealing with the localization and identification of molecular components, metabolic activities and cell biological aspects of cells and tissues. Coverage extends to the development, application, and/or evaluation of methods and probes that can be used in the entire area of histochemistry and cell biology.
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