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Updated: Aug 9, 2026

Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
A therapeutic target for hormone-independent estrogen receptor-positive breast cancers
1Division of Cancer Biology, Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA. biswas@mbcrr.harvard.edu
Background:
The action of the steroid hormone estradiol (E2) is mediated via interaction with a specific receptor (ER) that initiates a series of events downstream, leading to the modulation of hormone-responsive genes and cell proliferation. Antihormones also bind, but do not confer the active configuration to ER, thereby, blocking the transmission of E2-ER-initiated signals for cell proliferation. Although these compounds qualify for successful therapy of ER-positive [ER (+)] breast cancer patients, only a fraction of patients responds to antihormone treatment. In this study, the functional status of ER is determined to identify alternative targets for therapy of antihormone-resistant ER (+) breast cancers.
Method:
The interaction of ER with a specific DNA sequence, designated as E2 response element (ERE), was targeted to assess the functional state of ER. ER-ERE complex formation was measured by electrophoretic mobility shift assay (EMSA) and by a newly developed technique, based on the preferential binding of DNA-protein complex to a nitrocellulose membrane (NMBA) that measures both total and functional fraction of ER.
Results:
The NMBA assay identified functional variants of ER among ER (+) breast cancer cell lines and breast tumor biopsy specimens. ER of (21PT) cells did not bind E2 and these cells were tamoxifen (TAM) resistant. However 21PT cells were sensitive to a calmodulin (CaM) antagonist, W7, that blocked ERE-ER complex formation.
Conclusions:
ER variants of the 21PT type were detected among breast cancer biopsy specimens, emphasizing the significance of an alternative therapeutic target for TAM-resistant ER (+) human breast cancers with compounds such as W7.
Insights
Estradiol receptor (ER) variants in breast cancer can resist tamoxifen treatment. A novel assay identified these variants, suggesting new therapeutic targets like W7 for resistant ER-positive breast cancers.
Area of Science:
- Endocrinology
- Molecular Biology
- Oncology
Background:
- Estradiol (E2) exerts its effects through the estrogen receptor (ER), regulating gene expression and cell proliferation.
- Antihormones block E2-ER signaling but are only effective in a subset of ER-positive breast cancers.
- Identifying the functional status of ER is crucial for developing therapies for antihormone-resistant breast cancers.
Purpose of the Study:
- To determine the functional status of ER in breast cancer.
- To identify alternative therapeutic targets for antihormone-resistant ER-positive breast cancers.
Main Methods:
- Assessed ER-ERE complex formation using electrophoretic mobility shift assay (EMSA).
- Developed and utilized a nitrocellulose membrane-based assay (NMBA) to measure both total and functional ER fractions.
- Investigated the sensitivity of resistant cell lines to calmodulin antagonists.
Main Results:
- The NMBA assay detected functional ER variants in ER-positive breast cancer cell lines and tumor specimens.
- ER in 21PT cells did not bind E2 and was resistant to tamoxifen (TAM).
- 21PT cells showed sensitivity to the calmodulin antagonist W7, which inhibited ER-ERE complex formation.
Conclusions:
- ER variants, like those in 21PT cells, are present in breast cancer biopsies.
- These variants represent significant therapeutic targets for tamoxifen-resistant ER-positive breast cancers.
- Compounds such as W7 show promise as alternative treatments for these resistant cancers.
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