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Ras puts the brake on doxorubicin-mediated cell death in p53-expressing cells
Sunil K Manna1, Charitha Gangadharan, Damodar Edupalli
1Laboratory of Immunology, Centre for DNA Fingerprinting and Diagnostics, Nampally, Hyderabad 500 001, India. manna@cdfd.org.in
Abstract:
Doxorubicin is one of the most effective molecules used in the treatment of various tumors. Contradictory reports often open windows to understand the role of p53 tumor suppressor in doxorubicin-mediated cell death. In this report, we provide evidences that doxorubicin induced more cell death in p53-negative tumor cells. Several cells, having p53 basal expression, showed increase in p53 DNA binding upon doxorubicin treatment. Doxorubicin induced cell death in p53-positive cells through expression of p53-dependent genes and activation of caspases and caspase-mediated cleavage of cellular proteins. Surprisingly, in p53-negative cells, doxorubicin-mediated cell death was more aggressive (faster and intense). Doxorubicin increased the amount of Fas ligand (FasL) by enhancing activator protein (AP) 1 DNA binding in both p53-positive and p53-negative cells, but the basal expression of Fas was higher in p53-negative cells. Anti-FasL antibody considerably protected doxorubicin-mediated cell death in both types of cells. Activation of caspases was faster in p53-negative cells upon doxorubicin treatment. In contrast, the basal expression of Ras oncoprotein was higher in p53-positive cells, which might increase the basal expression of Fas in these cells. Overexpression of Ras decreased the amount of Fas in p53-negative cells, thereby decreasing doxorubicin-mediated aggressive cell death. Overall, this study will help to understand the much studied chemotherapeutic drug, doxorubicin-mediated cell signaling cascade, that leads to cell death in p53-positive and -negative cells. High basal expression of Fas might be an important determinant in doxorubicin-mediated cell death in p53-negative cells.
Insights
Doxorubicin induces more aggressive cell death in p53-negative tumor cells, primarily through higher basal Fas expression. This study clarifies doxorubicin
Area of Science:
- Oncology
- Molecular Biology
- Cell Death Signaling
Background:
- Doxorubicin is a key chemotherapeutic agent with complex effects on cell death.
- The role of the p53 tumor suppressor in doxorubicin's efficacy remains debated.
- Understanding p53's influence is crucial for optimizing cancer treatment.
Purpose of the Study:
- To investigate the differential mechanisms of doxorubicin-induced cell death in p53-positive versus p53-negative tumor cells.
- To elucidate the role of Fas ligand (FasL) and Ras oncoprotein in these pathways.
- To clarify the signaling cascade leading to cell death mediated by doxorubicin.
Main Methods:
- Comparative analysis of doxorubicin-treated p53-positive and p53-negative cell lines.
- Assessment of p53 DNA binding, gene expression, and caspase activation.
- Measurement of Fas and FasL levels and their functional impact.
- Investigation of Ras oncoprotein's role in modulating Fas expression and cell death.
Main Results:
- Doxorubicin induced more aggressive cell death in p53-negative cells.
- p53-negative cells exhibited higher basal Fas expression, contributing to faster caspase activation.
- Doxorubicin increased FasL in both cell types, but higher basal Fas in p53-negative cells amplified the effect.
- Ras oncoprotein levels inversely correlated with Fas expression, impacting cell death intensity.
Conclusions:
- High basal Fas expression is a key determinant of aggressive doxorubicin-mediated cell death in p53-negative cells.
- The interplay between p53 status, Fas signaling, and Ras oncoprotein influences doxorubicin's efficacy.
- This research provides insights into differential drug response and potential therapeutic strategies.
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