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

AI Article Synopsis

  • Ribosome biogenesis takes place in the nucleolus, which has unique dynamic properties that are crucial for its function.
  • Researchers developed a high-throughput method called HiT-FRAP to investigate how various genes affect the dynamics of a nucleolar scaffold protein, nucleophosmin (NPM1).
  • The study reveals that disruptions at different stages of ribosome assembly lead to specific changes in nucleolar structure and fluidity, linking ribosome assembly processes to the physical characteristics of the nucleolus and opening avenues for studying similar systems in other biomolecular condensates.

Article Abstract

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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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10557630PMC
http://dx.doi.org/10.1101/2023.09.26.559432DOI Listing

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