RAC3 more than a nuclear receptor coactivator: a key inhibitor of senescence that is downregulated in aging
P N Fernández Larrosa1, M Ruíz Grecco1, D Mengual Gómez2
1Laboratorio de Biología Molecular y Apoptosis, Instituto de Investigaciones Médicas Alfredo Lanari, IDIM-CONICET, Facultad de Medicina, Universidad de Buenos Aires, Combatientes de Malvinas 3150, Buenos Aires C1427ARO, Argentina.
Abstract:
Receptor-associated coactivator 3 (RAC3) is a nuclear receptor coactivator usually overexpressed in tumors that exerts oncogenic functions in the cytoplasm and the nucleus. Although as part of its oncogenic actions it was previously identified as an inhibitor of apoptosis and autophagy, its expression is required in order to preserve the pluripotency and embryonic stem cell self-renewal. In this work we investigated its role in cellular senescence. We found that RAC3 overexpression in the nontumoral HEK293 cells inhibits the premature senescence induced by hydrogen peroxide or rapamycin. The mechanism involves not only the inhibition of autophagy early induced by these stimuli in the pathway to senescence, but also the increase in levels and nuclear localization of both the cell cycle suppressors p53/p21 and the longevity promoters FOXO1A, FOXO3A and SIRT1. Furthermore, we found that RAC3 overexpression is required in order to maintain the telomerase activity. In tumoral HeLa cells its activity was inhibited by depletion of RAC3 inducing replicative senescence. Moreover, we demonstrated that in vivo, levels of RAC3 are downregulated in the liver from aged as compared with young rats, whereas the levels of p21 are increased, correlating with the expected senescent cell contents in aged tissues. A similar downregulation of RAC3 was observed in the premature and replicative senescence of human fetal WI-38 cells and premature senescence of hepatocyte HepG2 cell line. Taken together, all these results demonstrate that RAC3 is an inhibitor of senescence whose downregulation in aged individuals could be probably a tumor suppressor mechanism, avoiding the clonal expansion of risky old cells having damaged DNA.
Insights
Receptor-associated coactivator 3 (RAC3) inhibits cellular senescence by maintaining telomerase activity and increasing cell cycle suppressors. RAC3 downregulation in aging may prevent clonal expansion of damaged cells, acting as a tumor suppressor.
Area of Science:
- Cellular Biology
- Molecular Biology
- Aging Research
Background:
- Receptor-associated coactivator 3 (RAC3) is a nuclear coactivator overexpressed in tumors, with known oncogenic functions.
- RAC3 acts as an inhibitor of apoptosis and autophagy but is crucial for embryonic stem cell pluripotency and self-renewal.
Purpose of the Study:
- To investigate the role of RAC3 in cellular senescence.
- To elucidate the mechanisms by which RAC3 influences senescence pathways.
Main Methods:
- Overexpression of RAC3 in HEK293 cells and RAC3 depletion in HeLa cells.
- Induction of premature senescence using hydrogen peroxide or rapamycin.
- Analysis of cell cycle suppressors (p53/p21), longevity promoters (FOXO1A, FOXO3A, SIRT1), and telomerase activity.
- In vivo studies in aged rats and senescence models (WI-38, HepG2 cells).
Main Results:
- RAC3 overexpression inhibited premature senescence and autophagy.
- RAC3 increased levels and nuclear localization of p53/p21 and FOXO1A, FOXO3A, SIRT1.
- RAC3 depletion in HeLa cells induced replicative senescence.
- RAC3 was downregulated in aged rat livers and senescent human cells, correlating with increased p21 levels.
Conclusions:
- RAC3 functions as an inhibitor of cellular senescence.
- Downregulation of RAC3 in aged individuals might serve as a tumor suppressor mechanism by limiting the proliferation of damaged cells.
- RAC3 plays a critical role in maintaining cellular youthfulness and preventing senescence.
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