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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
Molecular basis and dual ligand regulation of tetrameric estrogen receptor α/14-3-3ζ protein complex
Bente A Somsen1, Eline Sijbesma1, Seppe Leysen1
1Department of Biomedical Engineering and Institute for Complex Molecular Systems, Laboratory of Chemical Biology, Eindhoven University of Technology, Eindhoven, The Netherlands.
Abstract:
Therapeutic strategies targeting nuclear receptors (NRs) beyond their endogenous ligand binding pocket have gained significant scientific interest driven by a need to circumvent problems associated with drug resistance and pharmacological profile. The hub protein 14-3-3 is an endogenous regulator of various NRs, providing a novel entry point for small molecule modulation of NR activity. Exemplified, 14-3-3 binding to the C-terminal F-domain of the estrogen receptor alpha (ERα), and small molecule stabilization of the ERα/14-3-3ζ protein complex by the natural product Fusicoccin A (FC-A), was demonstrated to downregulate ERα-mediated breast cancer proliferation. This presents a novel drug discovery approach to target ERα; however, structural and mechanistic insights into ERα/14-3-3 complex formation are lacking. Here, we provide an in-depth molecular understanding of the ERα/14-3-3ζ complex by isolating 14-3-3ζ in complex with an ERα protein construct comprising its ligand-binding domain (LBD) and phosphorylated F-domain. Bacterial co-expression and co-purification of the ERα/14-3-3ζ complex, followed by extensive biophysical and structural characterization, revealed a tetrameric complex between the ERα homodimer and the 14-3-3ζ homodimer. 14-3-3ζ binding to ERα, and ERα/14-3-3ζ complex stabilization by FC-A, appeared to be orthogonal to ERα endogenous agonist (E2) binding, E2-induced conformational changes, and cofactor recruitment. Similarly, the ERα antagonist 4-hydroxytamoxifen inhibited cofactor recruitment to the ERα LBD while ERα was bound to 14-3-3ζ. Furthermore, stabilization of the ERα/14-3-3ζ protein complex by FC-A was not influenced by the disease-associated and 4-hydroxytamoxifen resistant ERα-Y537S mutant. Together, these molecular and mechanistic insights provide direction for targeting ERα via the ERα/14-3-3 complex as an alternative drug discovery approach.
Insights
Targeting the estrogen receptor alpha (ERα) via its interaction with 14-3-3ζ offers a novel therapeutic strategy. Fusicoccin A stabilizes this complex, inhibiting cancer cell growth independently of traditional drug resistance mechanisms.
Area of Science:
- Molecular biology
- Structural biology
- Drug discovery
Background:
- Therapeutic strategies targeting nuclear receptors (NRs) beyond their ligand-binding pocket are emerging.
- The 14-3-3 protein is an endogenous regulator of NRs, offering a new target for small molecule modulation.
- Fusicoccin A (FC-A) stabilizes the estrogen receptor alpha (ERα)/14-3-3ζ complex, inhibiting ERα-mediated breast cancer proliferation.
Purpose of the Study:
- To elucidate the molecular and mechanistic insights into ERα/14-3-3ζ complex formation.
- To provide a structural understanding of the ERα/14-3-3ζ complex.
- To explore novel drug discovery approaches targeting ERα via the ERα/14-3-3 complex.
Main Methods:
- Bacterial co-expression and co-purification of the ERα/14-3-3ζ complex.
- Biophysical and structural characterization of the complex.
- Investigating the effect of FC-A, E2, and 4-hydroxytamoxifen on the complex and its interactions.
Main Results:
- A tetrameric complex of ERα homodimer and 14-3-3ζ homodimer was revealed.
- 14-3-3ζ binding and FC-A stabilization are independent of endogenous agonist binding and conformational changes.
- FC-A stabilization is unaffected by the 4-hydroxytamoxifen-resistant ERα-Y537S mutant.
Conclusions:
- The ERα/14-3-3ζ complex represents a novel target for ERα-mediated diseases.
- This interaction provides an alternative drug discovery approach, circumventing known resistance mechanisms.
- Detailed molecular insights guide the development of new therapeutics targeting the ERα/14-3-3ζ complex.
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