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In vivo Characterization of Endocrine Disrupting Chemical Effects via Thyroid Hormone Action Indicator Mouse
Published on: October 6, 2023
Tetrabromobisphenol-A disrupts thyroid hormone receptor alpha function in vitro: use of fluorescence polarization to
Maya Lévy-Bimbot1, Geneviève Major, Delphine Courilleau
1Univ Paris-Sud, Public Health-Environment, UMR 8079, France.
Abstract:
Thyroid hormone receptors (TRs) recruit corepressor or coactivator factors to the promoters of target genes to regulate their transcription. Corepressors such as nuclear hormone receptor corepressor (NCoR) are recruited by unliganded TRs, whereas coactivators such as steroid receptor coactivator-2 (SRC2) are recruited when triiodothyronine (T3) is bound to TRs. These coregulator proteins interact with the ligand binding domain (LBD) of TRs via short, conserved peptide sequences that can be used to probe the conformational changes induced in TR LBD by TR ligands. Recombinant LBD of the human TRα1 isoform (hTRα1 LBD) was produced as a fusion with glutathione S-transferase, and used to develop assays based on fluorescence polarization to quantify the binding of either NCoR- or SRC2-derived fluorescent peptides to the hTRα1 LBD. The optimum concentrations of recombinant hTRα1 LBD, and of peptide probes were adjusted in order to produce the greatest possible T3-dependent signal variations in fluorescence polarization. Under these conditions, T3 induced a dose-dependent decrease in NCoR peptide binding, and a reciprocal dose-dependent increase in SRC2 peptide binding, in both cases at similar 50%-effective doses. The TR agonists triiodothyroacetic acid and thyroxine were also effective in preventing NCoR peptide binding and increasing SRC2 peptide binding, whereas reverse-triiodothyronine was less efficient and the biologically inactive thyronine had no effect on either process. These experiments validate cell-free assays based on the use of binding of corepressor or coactivator peptide probes, as measured by fluorescence polarization, for investigating the conformational changes of TRα1 LBD induced by potentially TR-interfering compounds. Both these methods were used to elucidate the mechanism of the disrupting effects of tetrabromobisphenol-A (TBBPA) on the hTRα1 LBD conformation related to the transcriptional activity of the receptor. TBBPA is a flame retardant that is released into the environment, and is a suspected disrupter of thyroid homeostasis. The present results indicate that TBBPA did indeed interfere with the ability of the hTRα1 LBD to bind both NCoR and SRC2. TBBPA behaved similarly to T3 in promoting the release of NCoR from LBD, whereas it failed to promote LBD interactions with SRC2. However, it did reduce the T3-induced interactions between LBD and the coactivator peptide. This study therefore suggests that TBBPA in the micromolar range can affect the regulation of transcription by both the apo- and the holo-TRα1, with potential disruption of the expression of genes that are either up- or down-regulated by T3.
Insights
This study developed cell-free assays to measure thyroid hormone receptor (TR) conformational changes. These assays revealed that tetrabromobisphenol-A (TBBPA) disrupts TRα1 receptor function, potentially affecting thyroid homeostasis.
Area of Science:
- Endocrinology
- Molecular Biology
- Toxicology
Background:
- Thyroid hormone receptors (TRs) regulate gene transcription by recruiting corepressors (like NCoR) or coactivators (like SRC2).
- These interactions involve conserved peptide sequences within the TR ligand-binding domain (LBD), making them targets for studying TR conformational changes.
Purpose of the Study:
- To develop and validate cell-free fluorescence polarization assays for quantifying TRα1 LBD conformational changes.
- To investigate the mechanism by which tetrabromobisphenol-A (TBBPA), a suspected thyroid disruptor, affects TRα1 LBD conformation and transcriptional activity.
Main Methods:
- Production of recombinant human TRα1 LBD (hTRα1 LBD) fused to glutathione S-transferase.
- Development of fluorescence polarization assays to measure the binding of NCoR- and SRC2-derived fluorescent peptides to hTRα1 LBD.
- Testing the effects of triiodothyronine (T3), TR agonists, reverse-triiodothyronine, thyronine, and TBBPA on peptide binding.
Main Results:
- T3 dose-dependently decreased NCoR peptide binding and increased SRC2 peptide binding to hTRα1 LBD.
- TR agonists mimicked T3's effects, while reverse-T3 was less effective and thyronine had no effect.
- TBBPA interfered with both NCoR and SRC2 binding, promoting NCoR release but failing to promote SRC2 interaction, and it reduced T3-induced SRC2 binding.
Conclusions:
- Validated cell-free fluorescence polarization assays are effective for studying TRα1 LBD conformational changes induced by ligands and compounds.
- TBBPA disrupts TRα1 LBD conformation in a manner that affects both apo- and holo-TRα1 transcriptional regulation.
- TBBPA's interference with coregulator binding suggests a mechanism for its potential disruption of thyroid homeostasis.
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