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Published on: January 1, 2018
Ligands differentially modulate the protein interactions of the human estrogen receptors alpha and beta
Emmanuel Margeat1, Anne Bourdoncle, Raphael Margueron
1Centre de Biochimie Structurale, INSERM U554, CNRS UMR5048, 29, rue de Navacelles, 34090, Cedex, Montpellier, France.
Abstract:
The interactions of human estrogen receptor subtypes ERalpha and ERbeta with DNA and a 210 amino acid residue fragment of the coactivator protein SRC-1 bearing three nuclear receptor interaction motifs were investigated quantitatively using fluorescence anisotropy in the presence of agonist and antagonist ligands. ERalpha and ERbeta were found to bind in a similar manner to DNA, and both salt and temperature affected the affinity and/or stoichiometry of these interactions. The agonist ligands estradiol, estrone and estriol did not modify the binding of ERalpha to the fluorescein-labeled target estrogen response element. However, in the case of ERbeta, these ligands led to the formation of some higher-order protein-DNA complexes and a small decrease in affinity. The partial agonist 4-hydroxytamoxifen had little effect on either ER subtype, whereas the pure antagonist ICI 182,780 led to the cooperative formation of protein-DNA complexes of higher order than dimer, as further demonstrated by competition experiments and gel mobility-shift assays. In addition to DNA binding, the interaction of both ER subtypes with the Alexa488-labeled SRC-1 coactivator fragment was investigated by fluorescence anisotropy. The agonist ligands estrone, estradiol, estriol, genistein and ethynyl estradiol exhibited distinct capacities for inducing the recruitment of SRC-1 that were not correlated with their affinity for the receptor. Moreover, estrone and genistein exhibited subtype specificity in that they induced SRC-1 recruitment to ERbeta with much higher efficiency than in the case of ERalpha. The differential coactivator recruitment capacities of the ER agonists and their receptor subtype coactivator recruitment specificity may be linked to the molecular structure of the agonists with respect to their interactions with a specific histidine residue located at the back of the ligand-binding pocket. Altogether, these quantitative in vitro studies of ER interactions reveal the complex energetic and stoichiometric consequences of changes in the chemical structures of these proteins and their ligands.
Insights
Estrogen receptor (ERalpha and ERbeta) interactions with DNA and coactivator SRC-1 differ based on ligand type and receptor subtype. Agonists and antagonists modulate ER binding and coactivator recruitment, revealing subtype-specific responses.
Area of Science:
- Molecular Endocrinology
- Biochemistry
- Structural Biology
Background:
- Estrogen receptors (ERalpha and ERbeta) are crucial for cellular responses to estrogen.
- Ligand binding significantly influences ER function, including DNA binding and coactivator recruitment.
- Understanding these interactions is key to developing targeted therapies.
Purpose of the Study:
- To quantitatively investigate the interactions of ERalpha and ERbeta with DNA and the SRC-1 coactivator fragment.
- To elucidate the effects of various agonist and antagonist ligands on these interactions.
- To explore the subtype specificity and molecular basis of ER-ligand-coactivator complex formation.
Main Methods:
- Quantitative fluorescence anisotropy assays were employed.
- Experiments involved DNA-binding and coactivator-binding investigations.
- Gel mobility-shift assays and competition experiments validated findings.
Main Results:
- Both ER subtypes bind DNA, with affinity affected by salt and temperature.
- Agonists showed varied effects on ERalpha and ERbeta DNA binding; antagonists induced higher-order complexes.
- Coactivator SRC-1 recruitment by agonists was subtype-specific and not correlated with receptor affinity, potentially linked to ligand structure and receptor pocket interactions.
Conclusions:
- Ligand type and receptor subtype critically influence ER-DNA and ER-coactivator interactions.
- Differential coactivator recruitment by ER agonists suggests subtype-specific signaling pathways.
- These findings provide quantitative insights into the complex molecular mechanisms governing estrogen receptor activity.
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