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ATM and p53 regulate FOXM1 expression via E2F in breast cancer epirubicin treatment and resistance
Julie Millour1, Natalia de Olano, Yoshiya Horimoto
1Division of Cancer, Department of Surgery andCancer, Imperial College London, Hammersmith Hospital Campus, London, UK.
Abstract:
In this report, we investigated the role and regulation of forkhead box M1 (FOXM1) in breast cancer and epirubicin resistance. We generated epirubicin-resistant MCF-7 breast carcinoma (MCF-7-EPI(R)) cells and found FOXM1 protein levels to be higher in MCF-7-EPI(R) than in MCF-7 cells and that FOXM1 expression is downregulated by epirubicin in MCF-7 but not in MCF-7-EPI(R) cells. We also established that there is a loss of p53 function in MCF-7-EPI(R) cells and that epirubicin represses FOXM1 expression at transcription and gene promoter levels through activation of p53 and repression of E2F activity in MCF-7 cells. Using p53(-/-) mouse embryo fibroblasts, we showed that p53 is important for epirubicin sensitivity. Moreover, transient promoter transfection assays showed that epirubicin and its cellular effectors p53 and E2F1 modulate FOXM1 transcription through an E2F-binding site located within the proximal promoter region. Chromatin immunoprecipitation analysis also revealed that epirubicin treatment increases pRB (retinoblastoma protein) and decreases E2F1 recruitment to the FOXM1 promoter region containing the E2F site. We also found ataxia-telangiectasia mutated (ATM) protein and mRNA to be overexpressed in the resistant MCF-7-EPI(R) cells compared with MCF-7 cells and that epirubicin could activate ATM to promote E2F activity and FOXM1 expression. Furthermore, inhibition of ATM in U2OS cells with caffeine or depletion of ATM in MCF-7-EPI(R) with short interfering RNAs can resensitize these resistant cells to epirubicin, resulting in downregulation of E2F1 and FOXM1 expression and cell death. In summary, our data show that ATM and p53 coordinately regulate FOXM1 via E2F to modulate epirubicin response and resistance in breast cancer.
Insights
This study reveals how forkhead box M1 (FOXM1) drives breast cancer epirubicin resistance. The ataxia-telangiectasia mutated (ATM) and p53 pathways coordinate FOXM1 regulation via E2F, offering new targets for overcoming resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Breast cancer treatment often involves chemotherapy agents like epirubicin.
- Resistance to epirubicin is a significant clinical challenge, limiting treatment efficacy.
- The role of forkhead box M1 (FOXM1) in mediating this resistance is not fully understood.
Purpose of the Study:
- To investigate the regulatory mechanisms of FOXM1 in breast cancer cells.
- To elucidate the role of FOXM1 in the development of epirubicin resistance.
- To identify key molecular players involved in FOXM1 regulation and epirubicin response.
Main Methods:
- Generation of epirubicin-resistant MCF-7 breast carcinoma cells (MCF-7-EPI(R)).
- Analysis of FOXM1, p53, E2F1, and ataxia-telangiectasia mutated (ATM) protein and mRNA expression.
- Luciferase reporter assays to study FOXM1 promoter activity.
- Chromatin immunoprecipitation to assess protein recruitment to the FOXM1 promoter.
- Inhibition of ATM using caffeine and short interfering RNAs (siRNAs).
Main Results:
- FOXM1 protein levels were elevated in MCF-7-EPI(R) cells compared to parental MCF-7 cells.
- Epirubicin downregulated FOXM1 in sensitive cells via p53 activation and E2F repression, but not in resistant cells.
- Loss of p53 function was observed in resistant cells.
- ATM was overexpressed in resistant cells and promoted E2F activity and FOXM1 expression.
- Inhibition of ATM resensitized resistant cells to epirubicin, downregulating FOXM1 and leading to cell death.
Conclusions:
- ATM and p53 act coordinately to regulate FOXM1 expression through E2F.
- This regulatory axis plays a crucial role in modulating epirubicin response and resistance in breast cancer.
- Targeting the ATM-p53-E2F-FOXM1 pathway may offer a strategy to overcome epirubicin resistance.
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