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Updated: Jul 11, 2026

Systems Biology of Metabolic Regulation by Estrogen Receptor Signaling in Breast Cancer
Published on: March 17, 2016
Selective estrogen-receptor modulators and antihormonal resistance in breast cancer
V Craig Jordan1, Bert W O'Malley
1Fox Chase Cancer Center, 333 Cottman Ave, Philadelphia, PA 19111-2497, USA. v.craig.jordan@fccc.edu
Abstract:
Selective estrogen-receptor (ER) modulators (SERMs) are synthetic nonsteroidal compounds that switch on and switch off target sites throughout the body. Tamoxifen, the pioneering SERM, blocks estrogen action by binding to the ER in breast cancers. Tamoxifen has been used ubiquitously in clinical practice during the last 30 years for the treatment of breast cancer and is currently available to reduce the risk of breast cancer in high-risk women. Raloxifene maintains bone density (estrogen-like effect) in postmenopausal osteoporotic women, but at the same time reduces the incidence of breast cancer in both high- and low-risk (osteoporotic) postmenopausal women. Unlike tamoxifen, raloxifene does not increase the incidence of endometrial cancer. Clearly, the simple ER model of estrogen action can no longer be used to explain SERM action at different sites around the body. Instead, a new model has evolved on the basis of the discovery of protein partners that modulate estrogen action at distinct target sites. Coactivators are the principal players that assemble a complex of functional proteins around the ligand ER complex to initiate transcription of a target gene at its promoter site. A promiscuous SERM ER complex creates a stimulatory signal in growth factor receptor-rich breast or endometrial cancer cells. These events cause drug-resistant, SERM-stimulated growth. The sometimes surprising pharmacology of SERMs has resulted in a growing interest in the development of new selective medicines for other members of the nuclear receptor superfamily. This will allow the precise treatment of diseases that was previously considered impossible.
Insights
Selective estrogen-receptor modulators (SERMs) offer targeted effects by interacting with protein partners, moving beyond the simple estrogen receptor model. This allows for precise disease treatment and development of new medicines.
Area of Science:
- Endocrinology
- Molecular Biology
- Pharmacology
Background:
- Selective estrogen-receptor modulators (SERMs) are synthetic compounds that modulate estrogen receptor (ER) activity at different target sites.
- Tamoxifen, a pioneering SERM, is used for breast cancer treatment and risk reduction but can increase endometrial cancer incidence.
- Raloxifene, another SERM, maintains bone density and reduces breast cancer incidence without increasing endometrial cancer risk.
Purpose of the Study:
- To explain the complex actions of SERMs at various body sites.
- To introduce a new model for understanding SERM action based on protein partners.
- To highlight the potential for developing new selective medicines for nuclear receptor superfamily members.
Main Methods:
- Review of existing literature on SERM pharmacology and mechanisms of action.
- Explanation of the role of coactivators in forming functional protein complexes with the ER.
- Discussion of how SERM-ER complexes interact with cellular components like growth factor receptors.
Main Results:
- The simple ER model is insufficient to explain differential SERM effects.
- Protein partners, particularly coactivators, are crucial for modulating ER activity at specific sites.
- SERM-ER complexes can stimulate growth in certain cancer cells, leading to drug resistance.
Conclusions:
- A new model involving protein partners is necessary to understand SERM action.
- SERMs exhibit complex pharmacology, necessitating further research.
- This understanding facilitates the development of targeted therapies for various diseases.
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