核动力学是由核糖体的有序组装决定的。

Jessica Sheu-Gruttadauria, Xiaowei Yan, Nico Stuurman, Ronald D Vale, Stephen N Floor
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引用次数: 0

摘要

核糖体的生物发生是在核仁内协调的,核仁是一种生物分子缩合物,表现出被认为对核仁功能重要的动态物质特性。然而,核糖体组装和核仁动力学之间的关系尚不清楚。在这里,我们筛选了364个参与核糖体生物发生和RNA代谢的基因,以了解它们对核仁动力学的影响,这是通过核仁支架蛋白NPM1的光漂白后的自动高通量荧光回收(FRAP)来测量的。该筛选显示,导致早期rRNA中间体积累的基因敲除与核仁硬化有关,而晚期中间体的积累导致流动性增加。这些动力学变化伴随着核仁形态的明显变化。我们还发现,参与信使核糖核酸加工的基因影响核仁动力学,揭示了核糖体生物发生和其他信使核糖核酸处理途径之间的联系。这项工作共同定义了核糖体组装和核仁的生物物理特征之间的机制联系,同时建立了一个工具箱,用于了解分子动力学如何影响其他生物分子缩合物的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Nucleolar dynamics are determined by the ordered assembly of the ribosome.

Ribosome biogenesis occurs in the nucleolus, a nuclear biomolecular condensate that exhibits dynamic biophysical properties thought to be important for function. However, the relationship between ribosome assembly and nucleolar dynamics is incompletely understood. Here, we present a platform for high-throughput fluorescence recovery after photobleaching (HiT-FRAP), which we use to screen hundreds of genes for their impact on dynamics of the nucleolar scaffold nucleophosmin (NPM1). We find that scaffold dynamics and nucleolar morphology respond to disruptions in key stages of ribosome biogenesis. Accumulation of early ribosomal intermediates leads to nucleolar rigidification while late intermediates lead to increased fluidity. We map these biophysical changes to specific ribosomal intermediates and their affinity for NPM1. We also discover that disrupting mRNA processing impacts nucleolar dynamics and ribosome biogenesis. This work mechanistically ties ribosome assembly to the biophysical features of the nucleolus and enables study of how dynamics relate to function across other biomolecular condensates.

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