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Biology subjects

Karemaker, I.

Publications and source records attributed to Karemaker, I..

2 recordsLinked to original sources

Weak interactions drive selective proteome demixing and tune the differential response to environmental perturbations

The intracellular space is a crowded environment where macromolecules perform distinct tasks despite pervasive "non-specific" interactions. Whether these interactions are functionally relevant and how they influence cellular organization remains unclear. Here, we developed QuPID-MS, which measures the propensity of proteins to phase separate in native cell extracts proteome-wide. We find that weak interactions drive condensation of half of the proteome in a crowding- and temperature-dependent manner and we present evidence that this proteome demixing occurs in cells. Importantly, protein condensation properties are conserved and broadly change when cells adapt to new environments, demonstrating that weak interactions are regulated and linked to function. Indeed, condensation of the growth regulator TORC1 coincides with its rapid inactivation, while high solubility of the stress-activated Hog1 ensures its activity across conditions. We thus uncover a fundamental organizing principle that allows tuning of cell growth to environmental fluctuations while ensuring other processes function robustly despite perturbations.

cell biology↗

Disruption of nucleolar integrity triggers cellular quiescence through organelle rewiring and secretion

The nucleolus is the largest membraneless nuclear organelle and a critical regulator of growth and stress responses, comprised of over 600 proteins involved in ribosome biogenesis. However, how the nucleolar function and architecture coordinate cell-wide adaptive programs remains unclear. Here, we combined multi-omics profiling with functional genomics to define the cellular consequences of nucleolar disruption. We identify a stress response pathway connecting the nucleolus to the Golgi apparatus, endo-lysosomal trafficking, and cellular secretion (NuGETS). Chronic nucleolar defects activate a TP53-dependent transcriptional program that promotes organelle expansion, enhances secretory activity, and induces cell cycle exit with prolonged quiescence and partial epithelial-to-mesenchymal transition (pEMT) phenotypes. A genome-wide CRISPRi screen uncovered 400 regulators of secretory and quiescent states upon nucleolar stress. These pathways are enriched in cancer progression associated with ribosomopathies. Our findings therefore link nucleolar stress responses and cancer development, revealing cell-wide regulatory mechanisms that safeguard survival when nucleolar function is compromised.

cell biology↗