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Updated: Apr 12, 2026

Prediction and Validation of Gene Regulatory Elements Activated During Retinoic Acid Induced Embryonic Stem Cell Differentiation
Published on: June 21, 2016
Molecular mechanisms of transcriptional control by Rev-erbα: An energetic foundation for reconciling structure and
Anaïs Vaissière1, Sylvie Berger2, Deborah Harrus1
1Centre de Biochimie Structurale CNRS UMR 5048, INSERM UMR 1054, Université de Montpellier, 34090, Montpellier Cedex, France.
Abstract:
Rev-erbα and β are nuclear receptors that function as transcriptional repressors of genes involved in regulating circadian rhythms, glucose, and cholesterol metabolism and the inflammatory response. Given these key functions, Rev-erbs are important drug targets for treatment of a number of human pathologies, including cancer, heart disease, and type II diabetes. Transcriptional repression by the Rev-erbs involves direct competition with transcriptional activators for target sites, but also recruitment by the Rev-erbs of the NCoR corepressor protein. Interestingly, Rev-erbs do not appear to interact functionally with a very similar corepressor, Smrt. Transcriptional repression by Rev-erbs is thought to occur in response to the binding of heme, although structural, and ligand binding studies in vitro show that heme and corepressor binding are antagonistic. We carried out systematic studies of the ligand and corepressor interactions to address the molecular basis for corepressor specificity and the energetic consequences of ligand binding using a variety of biophysical approaches. Highly quantitative fluorescence anisotropy assays in competition mode revealed that the Rev-erb specificity for the NCoR corepressor lies in the first two residues of the β-strand in Interaction Domain 1 of NCoR. Our studies confirmed and quantitated the strong antagonism of heme and corepressor binding and significant stabilization of the corepressor complex by a synthetic ligand in vitro. We propose a model which reconciles the contradictory observations concerning the effects of heme binding in vitro and in live cells.
Insights
Rev-erb nuclear receptors regulate key metabolic and circadian processes. This study reveals how specific interactions with corepressors and ligands like heme influence their function, offering insights for drug development.
Area of Science:
- Molecular biology
- Biochemistry
- Pharmacology
Background:
- Rev-erb nuclear receptors (Rev-erbα and β) are transcriptional repressors crucial for circadian rhythms, metabolism, and inflammation.
- They are significant drug targets for diseases like cancer, heart disease, and type II diabetes.
- Rev-erb repression involves competition with activators and recruitment of corepressors, notably NCoR, but not Smrt.
Purpose of the Study:
- To investigate the molecular basis of Rev-erb corepressor specificity.
- To determine the energetic consequences of ligand binding on Rev-erb interactions.
- To reconcile conflicting data on heme binding effects in vitro versus in vivo.
Main Methods:
- Utilized quantitative fluorescence anisotropy assays in competition mode.
- Performed systematic studies of ligand and corepressor interactions.
- Employed various biophysical approaches to analyze binding.
Main Results:
- Identified the first two residues of NCoR's Interaction Domain 1 β-strand as critical for Rev-erb specificity.
- Quantified the strong antagonism between heme and corepressor binding.
- Demonstrated significant stabilization of the corepressor complex by a synthetic ligand in vitro.
Conclusions:
- Elucidated the molecular determinants of NCoR specificity for Rev-erbs.
- Provided a quantitative understanding of ligand-corepressor binding antagonism.
- Proposed a model to reconcile in vitro and cellular observations of heme effects.
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