Loss of p53 function promotes DNA damage-induced formation of nuclear actin filaments

Takeru Torii1, Wataru Sugimoto1, Katsuhiko Itoh1

  • 1Faculty of Frontiers of Innovative Research in Science and Technology (FIRST), Konan University, Kobe, 650-0047, Japan.

Cell Death & Disease
|November 24, 2023
PubMed

Insights

Tumor suppressor p53 and caspase-1 normally suppress nuclear actin filament formation after DNA damage. Inhibiting this pathway or expressing nLifeact-GFP promotes filament formation, potentially enhancing cancer treatment efficacy.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Cancer Research

Background:

  • The tumor suppressor p53 is crucial for DNA damage response.
  • Nuclear actin dynamics are affected by DNA-damaging agents, but p53's role in nuclear actin filament formation is unknown.
  • p53 activation promotes caspase-1 expression.

Purpose of the Study:

  • To investigate the role of p53 in DNA damage-induced nuclear actin filament formation.
  • To elucidate the involvement of the p53-caspase-1 axis in this process.
  • To explore the potential therapeutic implications of modulating nuclear actin filaments.

Main Methods:

  • Utilized DNA-damaging agents like doxorubicin (DOXO) and etoposide (VP16).
  • Employed p53 depletion and caspase-1 overexpression/inhibition strategies.
  • Visualized nuclear actin filaments using genetic probes like nLifeact-GFP and phalloidin staining.
  • Assessed DNA damage marker γH2AX and transcriptional activity.

Main Results:

  • p53 depletion promoted nuclear actin filament formation in response to DNA damage.
  • Overexpression of caspase-1 reduced DNA damage-induced nuclear actin filaments in p53-depleted cells.
  • Caspase inhibition (Q-VD-OPh or Z-YVAD-FMK) induced nuclear actin filaments even in wild-type p53 cells.
  • nLifeact-GFP expression modulated filament structure, reduced chromatin condensation, and decreased transcriptional activity and γH2AX levels.

Conclusions:

  • The p53-caspase-1 axis suppresses DNA damage-induced nuclear actin filament formation.
  • Artificial reinforcement of nuclear actin filaments via nLifeact-GFP may reduce gene transcription and enhance DNA-damaging agent cytotoxicity in cancer cells.
  • Further research is needed to clarify the functional relationship between nLifeact-GFP-decorated nuclear actin filaments and DNA repair.

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