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.

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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