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Published on: January 18, 2017
FOXA1 is a determinant of drug resistance in breast cancer cells
Uttom Kumar1, Anastasia Ardasheva1,2, Zimam Mahmud1,3
1Division of Cancer, Imperial College Faculty of Medicine, Hammersmith Hospital Campus, Du Cane Road, London, W12 0NN, UK.
Purpose:
Breast cancer is one of the most commonly diagnosed cancers in women. Five subtypes of breast cancer differ in their genetic expression profiles and carry different prognostic values, with no treatments available for some types, such as triple-negative, due to the absence of genetic signatures that could otherwise be targeted by molecular therapies. Although endocrine treatments are largely successful for estrogen receptor (ER)-positive cancers, a significant proportion of patients with metastatic tumors fail to respond and acquire resistance to therapy. FOXA1 overexpression mediates endocrine therapy resistance in ER-positive breast cancer, although the regulation of chemotherapy response by FOXA1 has not been addressed previously. FOXA1, together with EP300 and RUNX1, regulates the expression of E-cadherin, and is expressed in luminal, but absent in triple-negative and basal-like breast cancers. We have previously determined that EP300 regulates drug resistance and tumor initiation capabilities in breast cancer cells.
Methods:
Here we describe the generation of breast cancer cell models in which FOXA1 expression has been modulated either by expression of hairpins targeting FOXA1 mRNA or overexpression plasmids.
Results:
Upon FOXA1 knockdown in luminal MCF-7 and T47D cells, we found an increase in doxorubicin and paclitaxel sensitivity as well as a decrease in anchorage independence. Conversely, upregulation of FOXA1 in basal-like MDA-MB-231 cells led to an increase in drug resistance and anchorage independence.
Conclusion:
Together, these data suggest that FOXA1 plays a role in making tumors more aggressive.
Insights
Forkhead box A1 (FOXA1) influences breast cancer aggressiveness. Lowering FOXA1 in certain breast cancers increases chemotherapy sensitivity, while increasing it promotes drug resistance and tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Breast cancer comprises diverse subtypes with varying prognoses and treatment responses.
- Estrogen receptor (ER)-positive breast cancers often respond to endocrine therapy, but resistance is a significant clinical challenge.
- FOXA1 is implicated in endocrine therapy resistance, but its role in chemotherapy response remains unclear.
Purpose of the Study:
- To investigate the role of FOXA1 in regulating chemotherapy response and tumor aggressiveness in breast cancer.
- To determine if FOXA1 modulates sensitivity or resistance to common chemotherapeutic agents.
Main Methods:
- Generation of breast cancer cell models with modulated FOXA1 expression (knockdown or overexpression).
- Utilized hairpins targeting FOXA1 mRNA for knockdown and overexpression plasmids for increased expression.
- Assessed drug sensitivity (doxorubicin, paclitaxel) and anchorage independence in modified cell lines.
Main Results:
- FOXA1 knockdown in luminal breast cancer cells (MCF-7, T47D) enhanced sensitivity to doxorubicin and paclitaxel.
- Knockdown also decreased anchorage-independent growth, a marker of reduced tumor-initiating potential.
- Conversely, FOXA1 upregulation in basal-like breast cancer cells (MDA-MB-231) increased drug resistance and anchorage independence.
Conclusions:
- FOXA1 expression levels significantly impact breast cancer cell response to chemotherapy.
- The findings suggest FOXA1 contributes to tumor aggressiveness and drug resistance.
- Targeting FOXA1 may represent a therapeutic strategy to overcome chemotherapy resistance in specific breast cancer subtypes.
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