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Forkhead box K2 modulates epirubicin and paclitaxel sensitivity through FOXO3a in breast cancer
G Nestal de Moraes1,2, P Khongkow1, C Gong1,3
1Department of Surgery and Cancer, Imperial College London, Imperial Centre for Translational and Experimental Medicine (ICTEM), London, UK.
Abstract:
The forkhead transcription factor FOXK2 has recently been implicated in cancer cell proliferation and survival, but a role in cancer chemotherapeutic drug resistance has hitherto not been explored. Here we demonstrate that FOXK2 has a central role in mediating the cytotoxic drug response in breast cancer. Clonogenic and cell viability assays showed that enhanced FOXK2 expression sensitizes MCF-7 breast cancer cells to paclitaxel or epirubicin treatment, whereas FOXK2 depletion by small interfering RNAs (siRNAs) confers drug resistance. Our data also showed that the activation of the tumour suppressor FOXO3a by paclitaxel and epirubicin is mediated through the induction of FOXK2, as depletion of FOXK2 by siRNA limits the induction of FOXO3a by these drugs in MCF-7 cells. Chromatin immunoprecipitation (ChIP) analysis showed that in response to drug treatment, FOXK2 accumulates and binds to the proximal FOXO3a promoter region in MCF-7 cells. Furthermore, we also uncovered that FOXK2 is deregulated and, therefore, can express at high levels in the nucleus of both the paclitaxel and epirubicin drug-resistant MCF-7 cells. Our results showed that ectopically overexpressed FOXK2 accumulates in the nuclei of drug-resistant MCF-7 cells but failed to be recruited to target genes, including FOXO3a. Crucially, we found that FOXO3a is required for the anti-proliferative and epirubicin-induced cytotoxic function of FOXK2 in MCF-7 cells by sulphorhodamine and clonogenic assays. The physiological importance of the regulation of FOXO3a by FOXK2 is further confirmed by the significant correlations between FOXO3a and FOXK2 expression in breast carcinoma patient samples. Further survival analysis also reveals that high nuclear FOXK2 expression significantly associates with poorer clinical outcome, particularly in patients who have received conventional chemotherapy, consistent with our finding that FOXK2 is deregulated in drug-resistant cells. In summary, our results suggest that paclitaxel and epirubicin target the FOXK2 to modulate their cytotoxicity and deregulated FOXK2 confers drug resistance.
Insights
Forkhead transcription factor FOXK2 plays a key role in breast cancer drug resistance. Enhanced FOXK2 sensitizes cells to chemotherapy, while its depletion confers resistance, impacting patient outcomes.
Area of Science:
- Molecular Biology
- Oncology
Background:
- The forkhead transcription factor FOXK2 is implicated in cancer cell proliferation and survival.
- Its role in chemotherapeutic drug resistance remains unexplored.
Purpose of the Study:
- To investigate the role of FOXK2 in mediating the cytotoxic drug response in breast cancer.
- To explore the relationship between FOXK2, FOXO3a, and drug resistance in breast cancer cells.
Main Methods:
- Clonogenic and cell viability assays were used to assess drug response.
- Small interfering RNAs (siRNAs) were employed to deplete FOXK2 expression.
- Chromatin immunoprecipitation (ChIP) analysis was performed to study gene promoter binding.
- Expression levels of FOXK2 and FOXO3a were analyzed in patient samples.
Main Results:
- Enhanced FOXK2 expression sensitized MCF-7 breast cancer cells to paclitaxel and epirubicin.
- FOXK2 depletion conferred resistance to these drugs.
- Paclitaxel and epirubicin-induced activation of tumor suppressor FOXO3a is mediated by FOXK2.
- High nuclear FOXK2 expression correlated with poorer clinical outcomes in patients receiving chemotherapy.
Conclusions:
- FOXK2 plays a central role in the cytotoxic drug response in breast cancer.
- Deregulation of FOXK2 contributes to chemoresistance.
- Targeting FOXK2 may modulate drug cytotoxicity and improve patient outcomes.
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