Delineation of a FOXA1/ERα/AGR2 regulatory loop that is dysregulated in endocrine therapy-resistant breast cancer
Tricia M Wright1, Suzanne E Wardell1, Jeff S Jasper1
1Department of Pharmacology and Cancer Biology, Duke University School of Medicine, Durham, North Carolina.
Unlabelled:
Tamoxifen, a selective estrogen receptor (ER) modulator (SERM), remains a frontline clinical therapy for patients with ERα-positive breast cancer. However, the relatively rapid development of resistance to this drug in the metastatic setting remains an impediment to a durable response. Although drug resistance likely arises by many different mechanisms, the consensus is that most of the implicated pathways facilitate the outgrowth of a subpopulation of cancer cells that can either recognize tamoxifen as an agonist or bypass the regulatory control of ERα. Notable in this regard is the observation here and in other studies that expression of anterior gradient homology 2 (AGR2), a known proto-oncogene and disulfide isomerase, was induced by both estrogen (17β-estradiol, E2) and 4-hydroxytamoxifen (4OHT) in breast cancer cells. The importance of AGR2 expression is highlighted here by the observation that (i) its knockdown inhibited the growth of both tamoxifen-sensitive and -resistant breast cancer cells and (ii) its increased expression enhanced the growth of ERα-positive tumors in vivo and increased the migratory capacity of breast cancer cells in vitro. Interestingly, as with most ERα target genes, the expression of AGR2 in all breast cancer cells examined requires the transcription factor FOXA1. However, in tamoxifen-resistant cells, the expression of AGR2 occurs in a constitutive manner, requiring FOXA1, but loses its dependence on ER. Taken together, these data define the importance of AGR2 in breast cancer cell growth and highlight a mechanism where changes in FOXA1 activity obviate the need for ER in the regulation of this gene.
Implications:
These findings reveal the transcriptional interplay between FOXA1 and ERα in controlling AGR2 during the transition from therapy-sensitive to -resistant breast cancer and implicate AGR2 as a relevant therapeutic target.
Insights
Tamoxifen resistance in breast cancer involves increased AGR2 expression, a proto-oncogene. Targeting AGR2 may overcome resistance by disrupting cancer cell growth and migration.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Tamoxifen is a key therapy for ERα-positive breast cancer.
- Drug resistance limits tamoxifen's effectiveness in metastatic disease.
- Resistance mechanisms include ERα pathway bypass or tamoxifen agonism.
Purpose of the Study:
- Investigate the role of anterior gradient homology 2 (AGR2) in tamoxifen resistance.
- Elucidate the regulatory mechanisms of AGR2 expression in breast cancer.
Main Methods:
- Examined AGR2 expression in tamoxifen-sensitive and -resistant cells.
- Assessed the impact of AGR2 knockdown and overexpression on cell growth and migration.
- Investigated the role of FOXA1 and ERα in AGR2 gene regulation.
Main Results:
- AGR2 expression is induced by estrogen and tamoxifen.
- AGR2 knockdown inhibited growth in both sensitive and resistant cells.
- Increased AGR2 enhanced tumor growth and cell migration.
- Tamoxifen-resistant cells showed constitutive AGR2 expression dependent on FOXA1 but not ERα.
Conclusions:
- AGR2 is crucial for breast cancer cell growth and migration.
- Changes in FOXA1 activity lead to ERα-independent AGR2 regulation in resistant cells.
- AGR2 is a potential therapeutic target for overcoming tamoxifen resistance.
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