Activation of DNA damage response signaling in mouse embryonic stem cells

Ilya A Chuykin1, Maria S Lianguzova, Tatiana V Pospelova

  • 1Institute of Cytology, Russian Academy of Sciences, St.Petersburg, Russia.

Insights

Mouse embryonic stem cells (mESC) activate DNA damage response pathways, including ATM kinase and gammaH2AX foci formation, despite lacking G(1)/S checkpoints. This study investigates their DNA repair mechanisms under genotoxic stress.

Area of Science:

  • Cell Biology
  • Genomics
  • Molecular Biology

Background:

  • Mouse embryonic stem cells (mESC) proliferate rapidly and are sensitive to DNA damage.
  • mESC lack a functional G(1)/S checkpoint, making their DNA damage recognition and repair mechanisms crucial for genomic integrity.
  • Understanding how mESC handle DNA damage is vital for stem cell biology and regenerative medicine.

Purpose of the Study:

  • To investigate the kinetics and mechanisms of DNA damage recognition and repair in mESC.
  • To analyze the activation of DNA repair foci, specifically phosphorylated ATM kinase and gammaH2AX, in response to genotoxic stress.
  • To explore the role of the p53/Waf1 pathway in mESC's DNA damage response.

Main Methods:

  • Analysis of DNA repair foci using antibodies against phosphorylated ATM kinase and gammaH2AX.
  • Comet-assay to detect DNA single-strand breaks (SSBs).
  • Cell cycle synchronization using nocodazole followed by gamma-irradiation and staining for gammaH2AX.
  • Western blotting or similar techniques to assess p53 phosphorylation and p21/Waf1 gene expression.

Main Results:

  • mESC exhibit non-induced DNA SSBs and a background level of gammaH2AX staining.
  • Gamma-irradiation induces ATM kinase accumulation and gammaH2AX foci formation in mESC, which resolve over time.
  • Irradiation triggers gammaH2AX foci in G(2)-phase and mitotic mESC, indicating active DNA damage signaling.
  • p53 phosphorylation and p21/Waf1 expression are minimal in response to irradiation, despite ATM activation.

Conclusions:

  • mESC possess functional DNA damage signaling pathways (ATM, gammaH2AX) essential for DNA damage response, even with compromised cell cycle checkpoints.
  • The p53/Waf1 pathway appears to play a limited role in the immediate DNA damage response of mESC.
  • These findings highlight the unique strategies mESC employ to maintain genomic integrity.