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Sustained NF-kappaB activation produces a short-term cell proliferation block in conjunction with repressing
Marianna Penzo1, Paul E Massa, Eleonora Olivotto
1Centro Ricerca Biomedica Applicata (CRBA), S. Orsola-Malpighi University Hospital, University of Bologna, Bologna, Italy.
Abstract:
NF-kappaB transcription factors induce a host of genes involved in pro-inflammatory/stress-like responses; but the collateral effects and consequences of sustained NF-kappaB activation on other cellular gene expression programming remain less well understood. Here enforced expression of a constitutively active IKKbeta T-loop mutant (IKKbetaca) drove murine fibroblasts into transient growth arrest that subsided within 2-3 weeks of continuous culture. Proliferation arrest was associated with a G1/S phase block in immortalized and primary early passage MEFs. Molecular analysis in immortalized MEFs revealed that inhibition of cell proliferation in the initial 1-2 weeks after their IKKbetaca retroviral infection was linked to the transient, concerted repression of essential cell cycle effectors that are known targets of either E2F or FoxM1. Co-expression of a phosphorylation resistant IkappaBalpha super repressor and IKKbetaca abrogated growth arrest and cell cycle effector repression, thereby linking IKKbetaca's effects to canonical NF-kappaB activation. Transient growth arrest of IKKbetaca cells was associated with enhanced p21 (cyclin-dependent kinase inhibitor 1A) protein expression, due in part to transcriptional activation by NF-kappaB and also likely due to strong repression of Skp2 and Csk1, both of which are FoxM1 direct targets mediating proteasomal dependent p21 turnover. Ablation of p21 in immortalized MEFs reduced their IKKbetaca mediated growth suppression. Moreover, trichostatin A inhibition of HDACs alleviated the repression of E2F and FoxM1 targets induced by IKKbetaca, suggesting chromatin mediated gene silencing in IKKbetaca's short term repressive effects on E2F and FoxM1 target gene expression.
Insights
Sustained NF-kappaB activation, triggered by IKKbeta, causes temporary fibroblast growth arrest by repressing cell cycle genes like E2F and FoxM1. This NF-kappaB effect involves increased p21 and repressed Skp2/Csk1, suggesting chromatin-mediated gene silencing.
Area of Science:
- Cell Biology
- Molecular Biology
- Gene Regulation
Background:
- Nuclear factor-kappa B (NF-kappaB) transcription factors orchestrate inflammatory and stress responses.
- The broader impact of sustained NF-kappaB activation on cellular gene expression remains incompletely understood.
Purpose of the Study:
- To investigate the consequences of sustained NF-kappaB activation on cell proliferation and gene expression.
- To elucidate the molecular mechanisms underlying NF-kappaB-mediated growth arrest.
Main Methods:
- Enforced expression of a constitutively active IKKbeta T-loop mutant (IKKbetaca) in murine fibroblasts.
- Analysis of cell cycle progression (G1/S phase block) and protein expression (p21, Skp2, Csk1).
- Assessment of gene expression targets of E2F and FoxM1, and the effect of HDAC inhibition.
Main Results:
- IKKbetaca induced transient G1/S phase growth arrest in fibroblasts, linked to repression of E2F and FoxM1 target genes.
- NF-kappaB activation was confirmed as the cause via IkappaBalpha super repressor experiments.
- Enhanced p21 protein levels were observed, partly due to NF-kappaB transcriptional activation and repression of FoxM1 targets (Skp2, Csk1) involved in p21 degradation.
- HDAC inhibition alleviated the repression of E2F and FoxM1 targets, indicating chromatin-mediated silencing.
Conclusions:
- Sustained NF-kappaB activation can transiently suppress cell proliferation by repressing key cell cycle regulators.
- The mechanism involves both direct transcriptional effects and indirect modulation of gene expression via chromatin remodeling.
- p21 plays a significant role in mediating NF-kappaB-induced growth suppression.
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