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Updated: May 9, 2026

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Published on: January 4, 2017
MEK drives cyclin D1 hyperelevation during geroconversion
O V Leontieva1, Z N Demidenko, M V Blagosklonny
1Department of Cell Stress Biology, Roswell Park Cancer Institute, Elm and Carlton Streets, Buffalo, NY 14263, USA.
Abstract:
When the cell cycle becomes arrested, MTOR (mechanistic Target of Rapamycin) converts reversible arrest into senescence (geroconversion). Hyperexpression of cyclin D1 is a universal marker of senescence along with hypertrophy, beta-Gal staining and loss of replicative/regenerative potential (RP), namely, the ability to restart proliferation when the cell cycle is released. Inhibition of MTOR decelerates geroconversion, although only partially decreases cyclin D1. Here we show that in p21- and p16-induced senescence, inhibitors of mitogen-activated/extracellular signal-regulated kinase (MEK) (U0126, PD184352 and siRNA) completely prevented cyclin D1 accumulation, making it undetectable. We also used MEL10 cells in which MEK inhibitors do not inhibit MTOR. In such cells, U0126 by itself induced senescence that was remarkably cyclin D1 negative. In contrast, inhibition of cyclin-dependent kinase (CDK) 4/6 by PD0332991 caused cyclin D1-positive senescence in MEL10 cells. Both types of senescence were suppressed by rapamycin, converting it into reversible arrest. We confirmed that the inhibitor of CDK4/6 caused cyclin D1 positive senescence in normal RPE cells, whereas U0126 prevented cyclin D1 expression. Elimination of cyclin D1 by siRNA did not prevent other markers of senescence that are consistent with the lack of its effect on MTOR. Our data confirmed that a mere inhibition of the cell cycle was sufficient to cause senescence, providing MTOR was active, and inhibition of MEK partially inhibited MTOR in a cell-type-dependent manner. Second, hallmarks of senescence may be dissociated, and hyperelevated cyclin D1, a marker of hyperactivation of senescent cells, did not necessarily determine other markers of senescence. Third, inhibition of MEK was sufficient to eliminate cyclin D1, regardless of MTOR.
Insights
Inhibiting MEK signaling prevents cyclin D1 accumulation, a key marker of cellular senescence. This suggests that cyclin D1
Area of Science:
- Cellular senescence
- Molecular biology
- Cell cycle regulation
Background:
- Cellular senescence is a state of irreversible cell cycle arrest.
- Mechanistic Target of Rapamycin (MTOR) promotes the conversion of reversible cell cycle arrest into senescence (geroconversion).
- Cyclin D1 is a known marker of senescence, alongside other indicators like hypertrophy and beta-Gal staining.
Purpose of the Study:
- To investigate the role of mitogen-activated/extracellular signal-regulated kinase (MEK) signaling in cyclin D1 accumulation during senescence.
- To determine if MEK inhibition can prevent cyclin D1 expression in different senescence models.
- To explore the relationship between cyclin D1 expression and other senescence hallmarks.
Main Methods:
- Induction of senescence using p21 and p16.
- Treatment with MEK inhibitors (U0126, PD184352, siRNA) and cyclin-dependent kinase (CDK) 4/6 inhibitor (PD0332991).
- Analysis of cyclin D1 expression and other senescence markers in various cell types (MEL10, RPE cells).
Main Results:
- MEK inhibitors completely prevented cyclin D1 accumulation in p21- and p16-induced senescence.
- In cells where MEK inhibitors did not affect MTOR, U0126 induced cyclin D1-negative senescence.
- CDK4/6 inhibition induced cyclin D1-positive senescence, which was suppressed by rapamycin (MTOR inhibitor).
Conclusions:
- MEK inhibition effectively eliminates cyclin D1, a key senescence marker, independently of MTOR activity.
- Hallmarks of senescence can be dissociated, as cyclin D1 elevation does not always correlate with other senescence markers.
- MEK signaling is a critical regulator of cyclin D1 expression in cellular senescence.
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