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Updated: Aug 19, 2026

An In Vivo Estrogen Deficiency Mouse Model for Screening Exogenous Estrogen Treatments of Cardiovascular Dysfunction After Menopause
Published on: August 13, 2019
Oestrogen receptors and selective oestrogen receptor modulators: molecular and cellular pharmacology
Stefan Nilsson1, Konrad F Koehler
1Karo Bio AB, Novum, SE-141 57 Huddinge, Sweden. stefan.nilsson@karobio.se
Abstract:
The early termination of the two arms of the Women's Health Initiative Trials has led to an increased interest and demand for selective oestrogen receptor modulators because of their potential to retain the benefits of hormone replacement therapy (oestrogen plus a gestagen) and at the same time avoid most of its severe adverse events. Selective oestrogen receptor modulators are a class of oestrogen receptor binding, small organic molecules that take advantage of the plasticity of the oestrogen receptors (alpha and beta, respectively), modulating the surface conformation of the oestrogen receptors upon binding in the respective ligand binding cavity. By doing so they affect the binding of various co-factors to the surface of the oestrogen receptors that, at least in part, explains why selective oestrogen receptor modulators may mimic the activity of oestrogen in some tissues where so desired, while opposing its activity in tissues where oestrogen-like activity is undesirable. Although selective oestrogen receptor modulators have many properties in common they also display unique activities including oestrogen receptor surface modulation and regulation of target gene expression. Selective oestrogen receptor modulators therefore offer the opportunity to develop pharmaceuticals with very distinct pharmacology and mechanism of action. Furthermore, these modulators offer the advantage of decreased risk for the development of breast and endometrial cancer and circumvent the need for combination with a gestagen. Most selective oestrogen receptor modulators in development bind with roughly equal affinity to both oestrogen receptor alpha and beta (balanced) and our view is that it is unlikely that a balanced selective oestrogen receptor modulator will inherit all desired effects of oestrogen (e.g. 17beta-oestradiol) and at the same time be devoid of all undesired effects. We therefore propose that the development of oestrogen receptor-subtype (alpha and beta, respectively) selective pharmaceuticals for specific applications (designer drugs) would better provide the benefits of hormone replacement therapy without its associated risks.
Insights
Selective estrogen receptor modulators offer benefits of hormone therapy while avoiding risks. Developing subtype-selective drugs may optimize therapeutic outcomes and minimize adverse effects.
Area of Science:
- Pharmacology
- Endocrinology
- Molecular Biology
Background:
- The Women's Health Initiative Trials' early termination spurred interest in selective estrogen receptor modulators (SERMs).
- SERMs offer potential benefits of hormone replacement therapy (HRT) while mitigating severe adverse events.
- SERMs are small organic molecules that bind to estrogen receptors (ERs), modulating their conformation and co-factor binding.
Purpose of the Study:
- To explore the potential of SERMs as alternatives to traditional HRT.
- To investigate the mechanism of action of SERMs, focusing on ER subtype selectivity.
- To propose the development of ER-subtype selective pharmaceuticals for targeted therapeutic applications.
Main Methods:
- Review of existing literature on SERMs and estrogen receptor pharmacology.
- Analysis of the binding properties and functional outcomes of SERMs on ER alpha and ER beta.
- Conceptual framework for designing subtype-selective SERMs.
Main Results:
- SERMs can mimic estrogen activity in some tissues and oppose it in others.
- SERMs exhibit unique activities including ER surface modulation and gene expression regulation.
- Balanced SERMs (binding equally to ER alpha and beta) may not achieve all desired effects without undesired ones.
Conclusions:
- ER-subtype selective SERMs ('designer drugs') offer a promising approach to HRT.
- Targeted pharmaceuticals can provide HRT benefits with reduced cancer risks (breast, endometrial) and eliminate the need for gestagens.
- Developing ER-subtype selective drugs is crucial for optimizing therapeutic efficacy and safety in hormone therapy.
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