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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.
Abstract:
Cancer cells showing low apoptotic effects following oxidative stress-induced DNA damage are mainly affected by growth arrest. Thus, recent studies focus on improving anti-cancer therapies by increasing apoptosis sensitivity. We aimed at identifying a universal molecule as potential target to enhance oxidative stress-based anti-cancer therapy through a switch from cell cycle arrest to apoptosis. A cDNA microarray was performed with hydrogen peroxide-treated oesophageal squamous epithelial cancer cells TE7. This cell line showed checkpoint activation via p21(WAF1) , but low apoptotic response following DNA damage. The potential target molecule was chosen depended on the following demands: it should regulate DNA damage response, cell cycle and apoptosis. As the transcription factor ATF2 is implicated in all these processes, we focused on this protein. We investigated checkpoint activation via ATF2. Indeed, ATF2 knockdown revealed ATF2-triggered p21(WAF1) protein expression, suggesting p21(WAF1) transactivation through ATF2. Using chromatin immunoprecipitation (ChIP), we identified a hitherto unknown ATF2-binding sequence in the p21(WAF1) promoter. p-ATF2 was found to interact with p-c-Jun, creating the AP-1 complex. Moreover, ATF2 knockdown led to c-Jun downregulation. This suggests ATF2-driven induction of c-Jun expression, thereby enhancing ATF2 transcriptional activity via c-Jun-ATF2 heterodimerization. Notably, downregulation of ATF2 caused a switch from cell cycle arrest to reinforced apoptosis, presumably via p21(WAF1) downregulation, confirming the importance of ATF2 in the establishment of cell cycle arrest. 1-Chloro-2,4-dinitrobenzene also led to ATF2-dependent G2/M arrest, suggesting that this is a general feature induced by oxidative stress. As ATF2 knockdown also increased apoptosis, we propose ATF2 as a target for combined oxidative stress-based anti-cancer therapies.
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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