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Khabusheva, E.

Publications and source records attributed to Khabusheva, E..

2 recordsLinked to original sources

Adaptive energetic tuning of nucleolar phase separation regulates rRNA transport

Eukaryotic cells adjust biochemical pathways in response to environmental stressors, stalling energetically costly processes such as protein synthesis and ribosome biogenesis. Ribosome biogenesis occurs within the multiphase nucleolus that contains three layers roughly corresponding to ribosomal RNA (rRNA) transcription, processing, and assembly. While nucleolar perturbations induced by drug treatments and optogenetic nucleolar gelation alter nucleolar stability and hinder ribosome biogenesis, it remains unclear whether nucleolar properties are actively tuned in response to metabolic and growth cues. Here, we show that nucleolar phase separation is adjusted to physiological needs. Live-cell imaging of endogenously tagged NPM1 reveals a tight relationship between NPM1 partitioning and nutrient availability. In nutrient-deprived conditions, NPM1 levels in the nucleolus increase, indicative of stabilized phase separation and a more gel-like state. Indeed, we show that rRNA diffusion decreases and the nucleolar meshwork contracts. Furthermore, this change corresponds to decreased rRNA processing, suggesting that reduced transport properties prevent the release of immature ribosome subunits from the nucleolus. Mechanistically, we show that these changes are driven by ATP levels, which broadly affect the energetically expensive process of ribosome biogenesis. Upon restoration of ATP levels by nutrient reintroduction, nucleolar composition returns to normal within minutes, suggesting active regulation. Taken together, our findings reveal that the biophysical properties of the nucleolus are not fixed, but are actively remodeled by cellular energy levels, linking phase separation dynamics to metabolic control of ribosome biogenesis.

biophysics↗

Nuclear Phase Separation Drives NPM1-mutant Acute Myeloid Leukemia

During cancer development, mutations promote gene expression changes that cause transformation. Leukemia is frequently associated with aberrant HOXA expression driven by translocations in nucleoporin genes or KMT2A, and mutations in NPM1. How disparate mutations converge on this regulatory pathway is not understood. Here we demonstrate that mutant NPM1 (NPM1c) forms nuclear condensates in multiple human cell lines, mouse models, and primary patient samples. We show NPM1c phase separation is necessary and sufficient to coordinate the recruitment of NUP98 and KMT2A to condensates. Through extensive mutagenesis and pharmacological destabilization of phase separation, we find that NPM1c condensates are necessary for regulating gene expression, promoting in vivo expansion, and maintaining the undifferentiated leukemic state. Finally, we show that nucleoporin and KMT2A fusion proteins form condensates that are biophysically indistinguishable from NPM1c condensates. Together, these data define a new condensate underlying leukemias that we term coordinating bodies (C-bodies), and propose C-bodies as a therapeutic vulnerability.

biophysics↗