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Aging associated RNA loss impairs the dynamics of RNA and protein condensates

Rajappa, A.; Patel, T.; Raju, S. S.; Baliga, N.; Parihar, R.; Chodankar, A.; Singh, A.; Dastidar, P. G.; Iyer, K. V.; Ganesh, S.; Maharana, S.

2026-02-17 cell biology
10.64898/2026.02.16.705223 bioRxiv
Show abstract

Altered biomolecular condensate dynamics are increasingly implicated in age-associated neurodegenerative disorders, yet the molecular principles governing these changes remain incompletely understood. Here, we demonstrate that aged cells across diverse cellular and organismal models harbor pre-formed, viscous, and persistent stress granules (SGs), which we term alt-SGs. These persistent condensates confer protection to senescent cells under fluctuating stress conditions. Comparative analyses reveal that alt-SGs exhibit elevated RNA-binding protein (RBP)-to-RNA ratios, underscoring a shift in condensate stoichiometry. By quantifying SG composition and dynamics in live cells and in vitro, we establish that RNA concentration is a key determinant of condensate material properties, molecular composition, and dissolution capacity. Importantly, aging cells display diminished absolute RNA concentrations due to reduced RNA metabolic activity. Reactivation of RNA metabolism restores RNA/RBP ratios within SGs and alleviates aging-associated phenotypes. Together, our findings highlight RNA metabolism as a central regulator of condensate stoichiometry and function, linking metabolic decline to altered phase behavior and cellular aging. Key findingsO_LIAging and senescence have Alt-SGs with increased protein/RNA Ratio C_LIO_LIAlt-SGs are persistent after stress removal in aging C_LIO_LIAging is associated with reduced total cellular RNA C_LIO_LIReactivating RNA metabolism rescues SG phenotypes C_LIO_LIAlt-SGs are protective for senescent cell C_LI

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