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Therapeutic Targeting of ATP7B in Ovarian Carcinoma
Lingegowda S Mangala1, Vesna Zuzel, Rosemarie Schmandt
1Departments of Gynecologic Oncology, Experimental Therapeutics, and Cancer Biology, The University of Texas M. D. Anderson Cancer Center, USA.
Purpose:
Resistance to platinum chemotherapy remains a significant problem in ovarian carcinoma. Here, we examined the biological mechanisms and therapeutic potential of targeting a critical platinum resistance gene, ATP7B, using both in vitro and in vivo models.
Experimental Design:
Expression of ATP7A and ATP7B was examined in ovarian cancer cell lines by real-time reverse transcription-PCR and Western blot analysis. ATP7A and ATP7B gene silencing was achieved with targeted small interfering RNA (siRNA) and its effects on cell viability and DNA adduct formation were examined. For in vivo therapy experiments, siRNA was incorporated into the neutral nanoliposome 1,2-dioleoyl-sn-glycero-3-phosphatidylcholine (DOPC).
Results:
ATP7A and ATP7B genes were expressed at higher levels in platinum-resistant cells compared with sensitive cells; however, only differences in ATP7B reached statistical significance. ATP7A gene silencing had no significant effect on the sensitivity of resistant cells to cisplatin, but ATP7B silencing resulted in 2.5-fold reduction of cisplatin IC(50) levels and increased DNA adduct formation in cisplatin-resistant cells (A2780-CP20 and RMG2). Cisplatin was found to bind to the NH(2)-terminal copper-binding domain of ATP7B, which might be a contributing factor to cisplatin resistance. For in vivo therapy experiments, ATP7B siRNA was incorporated into DOPC and was highly effective in reducing tumor growth in combination with cisplatin (70-88% reduction in both models compared with controls). This reduction in tumor growth was accompanied by reduced proliferation, increased tumor cell apoptosis, and reduced angiogenesis.
Conclusion:
These data provide a new understanding of cisplatin resistance in cancer cells and may have implications for therapeutic reversal of drug resistance.
Insights
Targeting the ATP7B gene can overcome platinum chemotherapy resistance in ovarian cancer. Silencing ATP7B in resistant cells resensitized them to cisplatin and reduced tumor growth in vivo.
Area of Science:
- Oncology
- Molecular Biology
- Drug Resistance
Background:
- Platinum chemotherapy is a cornerstone treatment for ovarian carcinoma.
- Acquired resistance to platinum-based drugs significantly limits treatment efficacy.
- The ATP7B gene is implicated as a potential mediator of platinum resistance.
Purpose of the Study:
- To investigate the role of ATP7B in platinum resistance in ovarian cancer.
- To evaluate the therapeutic potential of targeting ATP7B to reverse cisplatin resistance.
Main Methods:
- Real-time RT-PCR and Western blot analysis to assess ATP7A and ATP7B expression.
- Small interfering RNA (siRNA) for ATP7A and ATP7B gene silencing.
- In vitro assessment of cell viability and DNA adduct formation.
- In vivo studies using nanoliposome-encapsulated siRNA (DOPC) combined with cisplatin.
Main Results:
- ATP7B expression was significantly higher in platinum-resistant ovarian cancer cells.
- ATP7B gene silencing reduced cisplatin IC(50) by 2.5-fold and increased DNA adducts.
- ATP7B siRNA combined with cisplatin significantly reduced tumor growth (70-88%) in vivo.
- Combination therapy led to decreased proliferation, increased apoptosis, and reduced angiogenesis.
Conclusions:
- ATP7B plays a critical role in cisplatin resistance in ovarian cancer.
- Targeting ATP7B offers a promising strategy for overcoming platinum resistance.
- These findings may lead to novel therapeutic approaches for ovarian cancer patients.
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