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Published on: November 15, 2013
Thyroid hormone receptor beta mutants: Dominant negative regulators of peroxisome proliferator-activated receptor
Osamu Araki1, Hao Ying, Fumihiko Furuya
1Laboratory of Molecular Biology, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892-4264, USA.
Abstract:
Thyroid hormone (T3) and peroxisome proliferators have overlapping metabolic effects in the maintenance of lipid homeostasis. Their actions are mediated by their respective receptors: thyroid hormone receptors (TR) and peroxisome proliferator-activated receptors (PPAR). We recently found that a dominantly negative TRbeta mutant (PV) that causes a genetic disease, resistance to thyroid hormone, acts to repress the ligand (troglitazone)-mediated transcriptional activity of PPARgamma in cultured thyroid cells. This finding suggests that TRbeta mutants could crosstalk with PPARgamma-signaling pathways. The present study explored the molecular mechanisms by which PV represses the PPARgamma transcriptional activity. Gel-shift assays show that the PV, similar to wild-type TRbeta, bound to the peroxisome proliferator response element (PPRE) as homodimers and heterodimers with PPARgamma or the retinoid X receptor (RXR), thereby competing with PPARgamma for binding to PPRE and for sequestering RXR. Association of PPRE-bound PV with corepressors [e.g., nuclear receptor corepressor (NCoR)] that led to transcriptional repression was independent of T3 and troglitazone. Chromatin immunoprecipitation assay further demonstrated that, despite the presence of ligands, NCoR was recruited to PPRE-bound PV on a PPARgamma-target gene, the lipoprotein lipase, in vivo, suggesting the dominant action of PV on PPARgamma-mediated transcriptional activity. Thus, the dominant negative action of PV is not limited on the wild-type TRs. The findings that TRbeta mutants affect PPARgamma functions through dominant negative action provide insights into the molecular mechanisms by which TR regulates the PPARgamma-target genes involved in metabolic pathways, lipid homeostasis, and carcinogenesis.
Insights
Thyroid hormone receptor (TR) mutants interfere with PPARgamma activity by binding to DNA response elements and recruiting corepressors, impacting lipid homeostasis and metabolic pathways.
Area of Science:
- Endocrinology
- Molecular Biology
- Metabolic Research
Background:
- Thyroid hormone (T3) and peroxisome proliferators share metabolic roles in lipid homeostasis, mediated by thyroid hormone receptors (TR) and peroxisome proliferator-activated receptors (PPAR).
- A TRbeta mutant (PV), causing resistance to thyroid hormone, was previously found to repress PPARgamma activity.
Purpose of the Study:
- To elucidate the molecular mechanisms by which the TRbeta mutant (PV) represses PPARgamma transcriptional activity.
- To investigate the crosstalk between TRbeta mutants and PPARgamma signaling pathways.
Main Methods:
- Gel-shift assays to analyze receptor binding to peroxisome proliferator response elements (PPRE).
- Chromatin immunoprecipitation assays to assess in vivo recruitment of corepressors to target genes.
Main Results:
- PV binds to PPRE as homodimers and heterodimers with PPARgamma or RXR, competing for binding and sequestering RXR.
- PV recruits corepressors like NCoR to PPRE independently of T3 and troglitazone.
- In vivo, NCoR is recruited to PPRE-bound PV on the lipoprotein lipase gene, demonstrating dominant negative action.
Conclusions:
- TRbeta mutants exert dominant negative effects on PPARgamma activity by interfering with receptor binding and corepressor recruitment.
- These findings offer insights into how TR regulates PPARgamma-target genes involved in metabolism, lipid homeostasis, and carcinogenesis.
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