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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
Engineering of a mouse for the in vivo profiling of estrogen receptor activity
P Ciana1, G Di Luccio, S Belcredito
1Institute of Pharmacological Science, University of Milan 20133 Milan, Italy.
Abstract:
In addition to their well known control of reproductive functions, estrogens modulate important physiological processes. The identification of compounds with tissue-selective activity will lead to new drugs mimicking the beneficial effects of estrogen on the prevention of osteoporosis and cardiovascular or neurodegenerative diseases, while avoiding its detrimental proliferative effects. As an innovative model for the in vivo identification of new selective estrogen receptor modulators (SERMs), we engineered a mouse genome to express a luciferase reporter gene ubiquitously. The constructs for transgenesis consist of the reporter gene driven by a dimerized estrogen-responsive element (ERE) and a minimal promoter. Insulator sequences, either matrix attachment region (MAR) or beta-globin hypersensitive site 4 (HS4), flank the construct to achieve a generalized, hormoneresponsive luciferase expression. In the mouse we generated, the reporter expression is detectable in all 26 tissues examined, but is induced by 17beta-estradiol (E2) only in 15 of them, all expressing estrogen receptors (ERs). Immunohistochemical studies show that in the mouse uterus, luciferase and ERs colocalize. In primary cultures of bone marrow cells explanted from the transgenic mice and in vivo, luciferase activity accumulates with increasing E(2) concentration. E2 activity is blocked by the ER full antagonist ICI 182,780. Tamoxifen shows partial agonist activity in liver and bone when administered to the animals. In the mouse system here illustrated, by biochemical, immunohistochemical, and pharmacological criteria, luciferase content reflects ER transcriptional activity and thus represents a novel system for the study of ER dynamics during physiological fluctuations of estrogen and for the identification of SERMs or endocrine disruptors.
Insights
Researchers developed a novel mouse model to study estrogen receptor activity. This system allows for the in vivo identification of selective estrogen receptor modulators (SERMs) and endocrine disruptors.
Area of Science:
- Endocrinology
- Molecular Biology
- Pharmacology
Background:
- Estrogens regulate reproductive functions and other physiological processes.
- Tissue-selective estrogenic compounds are needed to mimic beneficial effects while avoiding adverse ones.
- Selective estrogen receptor modulators (SERMs) offer therapeutic potential.
Purpose of the Study:
- To develop an innovative in vivo model for identifying new SERMs.
- To study estrogen receptor (ER) dynamics and transcriptional activity.
- To facilitate the discovery of compounds modulating estrogenic effects.
Main Methods:
- Engineered a transgenic mouse model with a ubiquitous luciferase reporter gene.
- The reporter gene is driven by an estrogen-responsive element (ERE) and flanked by insulator sequences.
- Used immunohistochemistry and biochemical assays to measure reporter gene expression and ER activity in response to 17beta-estradiol (E2) and tamoxifen.
Main Results:
- Reporter gene expression was detected in 26 tissues and induced by E2 in 15 ER-expressing tissues.
- Luciferase activity colocalized with ERs in the mouse uterus.
- Luciferase activity increased with E2 concentration, was blocked by an ER antagonist, and showed partial agonist activity with tamoxifen in specific tissues.
Conclusions:
- The developed transgenic mouse model accurately reflects ER transcriptional activity.
- This system provides a novel tool for studying ER dynamics and identifying SERMs and endocrine disruptors.
- The model enables the in vivo assessment of estrogenic and anti-estrogenic compound effects across multiple tissues.
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