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.

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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