Proceedings of the National Academy of Sciences · 2000 · 461 citations · 29 references
Unfolded proteins in the ER activate the UPR, which induces chaperones, suppresses protein synthesis, and arrests cells in G1 through kinases such as Ire1α, Ire1β, and PERK. The study investigates whether PERK activation drives cyclin D1 loss and G1 arrest during the UPR. PERK activation reduces cyclin D1 synthesis via eIF2α phosphorylation, inducing G1 arrest, and a kinase‑deficient PERK mutant blocks this effect, confirming PERK as a key mediator of UPR‑induced growth arrest.
The accumulation of unfolded proteins in the endoplasmic reticulum (ER) triggers the u nfolded p rotein r esponse (UPR)-signaling pathway. The UPR coordinates the induction of ER chaperones with decreased protein synthesis and growth arrest in the G 1 phase of the cell cycle. Three ER transmembrane protein kinases (Ire1α, Ire1β, and PERK) have been implicated as proximal effectors of the mammalian UPR. We now demonstrate that activation of PERK signals the loss of cyclin D1 during the UPR, culminating in cell-cycle arrest. Overexpression of wild-type PERK inhibited cyclin D1 synthesis in the absence of ER stress, thereby inducing a G 1 phase arrest. PERK expression was associated with increased phosphorylation of the translation elongation initiation factor 2α (eIF2α), an event previously shown to block cyclin D1 translation. Conversely, a truncated form of PERK lacking its kinase domain acted as a dominant negative when overexpressed in cells, attenuating both cyclin D1 loss and cell-cycle arrest during the UPR without compromising induction of ER chaperones. These data demonstrate that PERK serves as a critical effector of UPR-induced growth arrest, linking stress in the ER to control of cell-cycle progression.
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Mutation of the mouse klotho gene leads to a syndrome resembling ageing.
PubMed · 1997 · 66.5K citations