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Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
Knockout of NRF2 triggers prostate cancer cells death through ROS modulation and sensitizes to cisplatin
Mariana C S Mancini1, Ana P Morelli1, Matheus B Severino1
1Multidisciplinary Laboratory of Food and Health (LabMAS), School of Applied Sciences (FCA), University of Campinas (UNICAMP), Limeira, São Paulo, Brazil.
Abstract:
Prostate cancer (PCa) represents the second most common cancer in men and affects millions worldwide. Chemotherapy is a common treatment for PCa but the development of resistance is often a problem during therapy. NRF2 (nuclear factor erythroid 2-related factor 2) is one of the major transcription factors regulating antioxidant enzymes and is also involved with drug efflux and detoxification. Cancer cells submitted to chemotherapy often promote NRF2 activation to benefit themselves with the cytoprotective response. Here, we found that DU145 and PC3 PCa cell lines have different responses regarding NRF2 activation, when subjected to arsenite-induced stress, even in the presence of MG132, a proteasome inhibitor. We also observed that only in PC3 cells treated with arsenite, NRF2 was able to translocate to the nucleus. To better understand the role of NRF2 in promoting chemoresistance, we performed CRISPR knockout of NRF2 (NKO) in DU145 and PC3 cells. The effectiveness of the knockout was confirmed through the downregulation of NRF2 targets (p < 0.0001). PC3 NKO cells exhibited higher levels of reactive oxygen species (ROS) compared to wild-type cells (p < 0.0001), while this alteration was not observed in DU145 NKO cells. Despite no modulation in ROS content, a lower IC50 value (p < 0.05) for cisplatin was observed in DU145 NKO cells, suggesting that the knockout sensitized the cells to the treatment. Besides, the treatment of DU145 NKO with cisplatin led cells to apoptosis as observed by the increased levels of PARP1 cleavage (p < 0.05), possibly triggered by increased DNA damage. Reduced levels of KU70 and phospho-CHK2 (p < 0.05) were also detected. The data presented here support that NRF2 is a mediator of oncogenesis and could be a potential target to sensitize PCa cells to chemotherapy, reinforcing the importance of knowing the specific genetic and biochemical characteristics of the cancer cells for a more effective approach against cancer.
Insights
Targeting NRF2 (nuclear factor erythroid 2-related factor 2) may sensitize prostate cancer cells to chemotherapy. Knocking out NRF2 in specific cell lines altered responses to treatment and apoptosis, highlighting its role in chemoresistance.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Prostate cancer (PCa) is a leading cancer in men, with chemotherapy resistance a significant clinical challenge.
- NRF2 (nuclear factor erythroid 2-related factor 2) is a transcription factor involved in cellular defense mechanisms, often activated by cancer cells to resist chemotherapy.
- Understanding cell-specific NRF2 activation is crucial for developing effective PCa treatments.
Purpose of the Study:
- To investigate the differential role of NRF2 activation in PCa chemoresistance using DU145 and PC3 cell lines.
- To assess the impact of NRF2 knockout (NKO) on cellular response to chemotherapy and oxidative stress.
Main Methods:
- Utilized arsenite-induced stress and proteasome inhibitor MG132 to study NRF2 activation in DU145 and PC3 cells.
- Performed CRISPR-Cas9 gene editing to generate NRF2 knockout (NKO) cell lines.
- Assessed reactive oxygen species (ROS) levels, IC50 values for cisplatin, and markers of apoptosis (PARP1 cleavage, KU70, phospho-CHK2).
Main Results:
- DU145 and PC3 cells exhibited distinct NRF2 activation patterns under arsenite stress; nuclear translocation of NRF2 was observed only in PC3 cells.
- NRF2 knockout in PC3 cells led to increased ROS, while DU145 NKO cells showed no ROS change but were sensitized to cisplatin (lower IC50).
- DU145 NKO cells treated with cisplatin displayed increased apoptosis, indicated by elevated PARP1 cleavage and reduced KU70 and phospho-CHK2 levels.
Conclusions:
- NRF2 plays a significant role in mediating oncogenesis and chemoresistance in prostate cancer.
- NRF2 is a potential therapeutic target to enhance chemotherapy efficacy in PCa.
- Tailoring treatment strategies based on specific cancer cell genetic and biochemical profiles is essential for effective cancer therapy.
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