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Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
Endoxifen and fulvestrant regulate estrogen-receptor α and related DEADbox proteins
Jasmin Asberger1,2, Thalia Erbes1,2, Markus Jaeger1,2
1Department of Obstetrics and Gynecology, Medical Center - University of Freiburg, Freiburg, Germany.
Abstract:
Breast cancer (BC) represents the most common type of cancer in females worldwide. Endocrine therapy evolved as one of the main concepts in treatment of hormone-receptor positive BC. Current research focuses on the elucidation of tumour resistance mechanisms against endocrine therapy. In a translational in vitro approach, potential regulatory effects of clinically implemented BC anti-oestrogens on ERα, its coactivators DDX5, DDX17 and other DEADbox proteins as well as on the proliferation markers cyclin D1 and Ki67 were investigated on both the RNA and protein level. BC in vitro models for hormone-receptor positive (MCF-7, T-47D) and hormone-receptor negative cells (BT-20) were subjected to endocrine therapy. Anti-oestrogen-dependent expression regulation of target genes on the transcriptional and translational level was quantified and statistically assessed. Endocrine therapy decreases the expression levels of Ki67, cyclin D1 and ERα in hormone-receptor positive cells. In the hormone-receptor negative cells, the three parameters remained stable after endocrine therapy. Endoxifen triggers a downregulation of DDX5 and DDX23 in MCF-7 cells. Fulvestrant treatment downregulates the expression levels of all investigated DEADbox proteins in MCF-7 cells. In T-47D cells, endoxifen and fulvestrant lead to a decrease of all target gene expression levels. Interestingly, endocrine therapy affects DEADbox RNA expression levels in BT-20 cells, too. However, this result could only be confirmed for DDX1, immunocytologically. The investigated DEADbox proteins appear to correlate with the oestrogen-dependent tumourigenesis in hormone-receptor positive BC and show expression alterations after endocrine treatment.
Insights
Endocrine therapy for breast cancer (BC) reduces estrogen receptor alpha (ERα), cyclin D1, and Ki67 in hormone-receptor positive cells. DEADbox proteins also show altered expression, potentially impacting BC tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Breast cancer (BC) is the most common cancer in women globally.
- Endocrine therapy is a primary treatment for hormone-receptor positive BC.
- Understanding resistance mechanisms to endocrine therapy is crucial.
Purpose of the Study:
- To investigate the regulatory effects of anti-estrogens on ERα, DEADbox proteins (DDX5, DDX17, etc.), and proliferation markers (cyclin D1, Ki67).
- To analyze these effects on both RNA and protein levels in BC cell lines.
Main Methods:
- Utilized in vitro models of hormone-receptor positive (MCF-7, T-47D) and negative (BT-20) BC cells.
- Subjected cells to endocrine therapy (endoxifen, fulvestrant).
- Quantified and statistically assessed gene and protein expression levels.
Main Results:
- Endocrine therapy decreased Ki67, cyclin D1, and ERα in hormone-receptor positive cells.
- Endoxifen and fulvestrant downregulated various DEADbox proteins in MCF-7 and T-47D cells.
- DEADbox RNA expression was affected in BT-20 cells, with DDX1 confirmed at the protein level.
Conclusions:
- DEADbox proteins correlate with estrogen-dependent tumorigenesis in hormone-receptor positive BC.
- These proteins exhibit expression alterations following endocrine treatment.
- Findings provide insights into BC endocrine therapy resistance mechanisms.
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