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The dual role of Rpt3 in protecting cells from proteotoxic damage.

Aug 2026 · The FEBS Journal · 0 citations · 101 references
Medicine

Abstract

Disrupted protein homeostasis is a shared characteristic in ageing, obesity-induced lipotoxicity and neurodegenerative diseases. The accumulation of misfolded or unfolded proteins within the cell triggers endoplasmic reticulum (ER) stress. In response, the unfolded protein response (UPR) and ER-associated degradation (ERAD) pathways are activated. A key mechanism to alleviate intracellular protein aggregation involves ubiquitination of substrates and their subsequent degradation by the proteasome. The ubiquitin-proteasome system (UPS) is indispensable for cellular protein quality control, and its dysfunction contributes to various proteopathies. However, the crosstalk between the proteasome subunit Rpt3 and the Ire1-Hac1 pathway appears to be rarely reported. In Saccharomyces cerevisiae, growth curve and spotting assay demonstrated that overexpression of Rpt3 reduced the sensitivity of ire1Δ or hac1Δ to ER stressors. The growth-promoting effect of Rpt3 is not a common feature of the BASE subunits, as overexpression of Rpt6 failed to rescue the growth inhibition. Deletion of hac1 resulted in stoichiometric imbalance among proteasomal subunits, which may be key for Rpt3-mediated rescue of hac1Δ growth, as deletion of the proteasome transcriptional factor Rpn4 impedes Rpt3 from restoring the growth of hac1Δ from ER stress. Overexpression of Rpt3 enhanced proteasome assembly and activity, reducing intracellular ubiquitin levels in hac1Δ. Moreover, Rpt3 increased the protein level of Hac1, and its alleviation of proteotoxic stress was dependent on the collaboration of ubiquitinating enzymes and chaperones. Western blot and proteasome activity assay in human cells confirmed the cross-species conservation of Rpt3 function. These results highlight a dual role for Rpt3 in proteostasis: beyond enhancing proteasomal activity, Rpt3 upregulates Hac1 protein abundance, thereby ensuring proteostasis maintenance.

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