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p53 activates the CD95 (APO-1/Fas) gene in response to DNA damage by anticancer drugs
M Müller1, S Wilder, D Bannasch
1Department of Internal Medicine IV, Hepatology and Gastroenterology, University Hospital, 69115 Heidelberg, Germany.
Abstract:
Chemotherapeutic drugs cause DNA damage and kill cancer cells mainly by apoptosis. p53 mediates apoptosis after DNA damage. To explore the pathway of p53-dependent cell death, we investigated if p53-dependent apoptosis after DNA damage is mediated by the CD95 (APO-1/Fas) receptor/ligand system. We investigated hepatoma, gastric cancer, colon cancer, and breast cancer cell lines upon treatment with different anticancer agents known to act via p53 accumulation. Cisplatin, mitomycin, methotrexate, mitoxantrone, doxorubicin, and bleomycin at concentrations present in the sera of patients during therapy led to an upregulation of both CD95 receptor and CD95 ligand. Induction of the CD95 ligand occurred in p53 wild-type (wt), p53 mutant (mt), and p53 deficient (p53(-/-)) cell lines and at wt and mt conformation of temperature-sensitive p53 mutants. In contrast, upregulation of the CD95 receptor was observed only in cells with wt p53, not in cells with mt or without any p53. Restitution of inducible wt p53 function restored the ability of p53(-/-) Hep3B cells to upregulate the CD95 receptor in response to anticancer drugs. This rendered the cells sensitive to CD95-mediated apoptosis. In an attempt to understand how CD95 expression is regulated by p53, we identified a p53-responsive element within the first intron of the CD95 gene, as well as three putative elements within the promoter. The intronic element conferred transcriptional activation by p53 and cooperated with p53-responsive elements in the promoter of the CD95 gene. wt p53 bound to and transactivated the CD95 gene, whereas mt p53 failed to induce apoptosis via activation of the CD95 gene. These observations provide a mechanistic explanation for the ability of p53 to contribute to tumor progression and to resistance of cancer cells to chemotherapy.
Insights
The p53 tumor suppressor protein regulates CD95 receptor (APO-1/Fas) expression, mediating chemotherapy-induced apoptosis. Wild-type p53 activates CD95 gene transcription, enhancing cancer cell sensitivity to apoptosis and chemotherapy.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Death Signaling
Background:
- Chemotherapy induces DNA damage, leading to cancer cell death primarily via apoptosis.
- The p53 protein is a key mediator of apoptosis following DNA damage.
- The role of the CD95 (APO-1/Fas) receptor/ligand system in p53-dependent apoptosis remains to be fully elucidated.
Purpose of the Study:
- To investigate whether p53-dependent apoptosis after DNA damage is mediated by the CD95 receptor/ligand system.
- To explore the regulatory mechanisms of CD95 gene expression by p53.
Main Methods:
- Treatment of various cancer cell lines (hepatoma, gastric, colon, breast) with DNA-damaging chemotherapeutic agents.
- Analysis of CD95 receptor and ligand expression in relation to p53 status (wild-type, mutant, deficient).
- Identification and functional characterization of p53-responsive elements in the CD95 gene promoter and intron.
Main Results:
- Anticancer drugs upregulated both CD95 receptor and ligand.
- CD95 receptor upregulation was dependent on wild-type p53, while ligand induction occurred independently of p53 status.
- Wild-type p53 directly bound to and transactivated the CD95 gene via intronic and promoter elements, restoring sensitivity to CD95-mediated apoptosis in p53-deficient cells.
Conclusions:
- Wild-type p53 plays a critical role in mediating chemotherapy-induced apoptosis through the upregulation of the CD95 receptor.
- Dysfunctional p53 contributes to chemotherapy resistance by failing to induce CD95 expression.
- These findings offer a mechanistic explanation for p53's role in tumor progression and chemoresistance.