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Activation of p53 in cervical carcinoma cells by small molecules
1CRC Cell Transformation Group, Department of Biochemistry, MSI/WTB Complex, University of Dundee, Dundee DD1 5EH, United Kingdom.
Abstract:
In over 90% of cervical cancers and cancer-derived cell lines, the p53 tumor suppressor pathway is disrupted by human papillomavirus (HPV). The HPV E6 protein promotes the degradation of p53 and thus inhibits the stabilization and activation of p53 that would normally occur in response to HPV E7 oncogene expression. Restoration of p53 function in these cells by blocking this pathway should promote a selective therapeutic affect. Here we show that treatment with the small molecule nuclear export inhibitor, leptomycin B, and actinomycin D leads to the accumulation of transcriptionally active p53 in the nucleus of HeLa, CaSki, and SiHa cells. Northern blot analyses showed that both actinomycin D and leptomycin B reduced the amount of HPV E6-E7 mRNA whereas combined treatment with the drugs showed almost complete disappearance of the viral mRNA. The combined treatment activated p53-dependant transcription, and increases in both p21(WAF1/CIP1) and Hdm2 mRNA were seen. The combined treatment resulted in apoptotic death in the cells, as evidenced by nuclear fragmentation and PARP-cleavage indicative of caspase 3 activity. These effects were greatly reduced by expressing a dominant negative p53 protein. The present study shows that small molecules can reactivate p53 in cervical carcinoma cells, and this reactivation is associated with an extensive biological response, including the induction of the apoptotic death of the cells.
Insights
Small molecules reactivated the p53 tumor suppressor pathway in cervical cancer cells by inhibiting human papillomavirus (HPV). This restoration of p53 function triggered cancer cell death, offering a potential new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Virology
Background:
- The p53 tumor suppressor pathway is disrupted in over 90% of cervical cancers by human papillomavirus (HPV).
- HPV E6 protein degrades p53, preventing its activation in response to HPV E7 oncogene expression.
- Restoring p53 function could selectively target cancer cells.
Purpose of the Study:
- To investigate if small molecules can restore p53 function in cervical cancer cells.
- To determine if p53 reactivation induces apoptosis in these cells.
Main Methods:
- Treatment of cervical cancer cell lines (HeLa, CaSki, SiHa) with leptomycin B and actinomycin D.
- Analysis of p53 accumulation, HPV E6-E7 mRNA levels, and p53-dependent gene expression (p21, Hdm2).
- Assessment of apoptosis through nuclear fragmentation and PARP cleavage, with and without dominant-negative p53 expression.
Main Results:
- Leptomycin B and actinomycin D caused accumulation of transcriptionally active p53 in the nucleus.
- Combined drug treatment significantly reduced HPV E6-E7 mRNA levels.
- p53-dependent transcription was activated, increasing p21 and Hdm2 mRNA, leading to apoptosis.
Conclusions:
- Small molecules can reactivate the p53 pathway in cervical carcinoma cells.
- Reactivation of p53 is associated with significant biological responses, including cancer cell apoptosis.
- This approach shows potential for selective therapeutic effects in cervical cancer treatment.