ATF2 knockdown reinforces oxidative stress-induced apoptosis in TE7 cancer cells

Diana Walluscheck1, Angela Poehlmann, Roland Hartig

  • 1Department of Pathology, Otto-von-Guericke University, Magdeburg, Germany.

Insights

Targeting the ATF2 protein can enhance anti-cancer therapies by switching cancer cells from growth arrest to apoptosis following oxidative stress. This research identifies ATF2 as a key regulator in DNA damage response and cell cycle control.

Area of Science:

  • Molecular biology
  • Cancer research
  • Cellular signaling

Background:

  • Cancer cells often resist apoptosis after DNA damage, leading to growth arrest.
  • Improving apoptosis sensitivity is crucial for enhancing anti-cancer therapies.
  • Identifying molecular targets to shift cancer cell fate from arrest to apoptosis is a key research area.

Purpose of the Study:

  • To identify a universal molecular target to enhance oxidative stress-based anti-cancer therapy.
  • To investigate the role of the transcription factor ATF2 in regulating DNA damage response, cell cycle, and apoptosis.
  • To determine if targeting ATF2 can switch cancer cells from cell cycle arrest to apoptosis.

Main Methods:

  • cDNA microarray analysis of hydrogen peroxide-treated esophageal squamous epithelial cancer cells (TE7).
  • Investigated checkpoint activation via ATF2, including ATF2 knockdown and chromatin immunoprecipitation (ChIP).
  • Assessed the interaction of phosphorylated ATF2 (p-ATF2) with phosphorylated c-Jun (p-c-Jun) and the effect of ATF2 knockdown on c-Jun expression.

Main Results:

  • ATF2 knockdown led to ATF2-triggered p21(WAF1) protein expression and identified an ATF2-binding sequence in the p21(WAF1) promoter.
  • p-ATF2 interacted with p-c-Jun to form the AP-1 complex, and ATF2 knockdown reduced c-Jun expression.
  • Downregulation of ATF2 induced a switch from cell cycle arrest to apoptosis, linked to p21(WAF1) downregulation.
  • Oxidative stress induced ATF2-dependent G2/M arrest, and ATF2 knockdown increased apoptosis.

Conclusions:

  • ATF2 plays a critical role in mediating cell cycle arrest in response to oxidative stress-induced DNA damage.
  • ATF2 regulates p21(WAF1) expression and interacts with c-Jun to form the AP-1 complex, influencing DNA damage response.
  • ATF2 is a potential therapeutic target for combined oxidative stress-based anti-cancer strategies to promote apoptosis.

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