Related Experiment Videos
Roles of 3,5,3'-triiodothyronine and deoxyribonucleic acid binding on thyroid hormone receptor complex formation
P M Yen1, J H Brubaker, J W Apriletti
1Department of Medicine, Brigham and Women's Hospital, Howard Hughes Medical Institute, Boston, Massachusetts 02115.
Abstract:
Thyroid hormone receptors (TRs) bind to thyroid hormone response elements (TREs) in the promoter region of target genes as monomers, homodimers, and heterodimers with nuclear proteins such as retinoid-X receptors (RXRs). Recently, we observed that T3 decreased TR homodimer, but not TR/RXR heterodimer, binding to TREs, suggesting that the latter complexes may be involved in transcriptional activation of target genes. However, little is known about TR complexes that form in solution. Thus far, there have been only limited studies comparing TR complex formation in solution and on DNA as well as examining the effects of T3 and the putative ligand for RXRs, 9-cis retinoic acid (9-cis RA), on TR complex formation. In this paper, we used a coimmunoprecipitation assay with anti-TR beta 1 antibody and the electrophoretic mobility shift assay under similar buffer and incubation conditions to demonstrate that in the absence of T3, TR beta 1 is present as a monomer in solution and binds primarily as a homodimer to the chicken lysozyme TRE, F2. In the presence of T3, TR beta 1 cannot form a homodimer on F2, but, instead, exists as a liganded monomer in solution. Kinetic studies demonstrated that T3 markedly increased the dissociation rate of TR homodimer from F2. Using similar methods, we observed TR beta 1/RXR alpha heterodimer formation in solution and 10-fold greater formation on F2. Neither T3 nor 9-cis RA significantly affected TR beta 1/RXR alpha heterodimer formation. Taken together, these results suggest that both T3 and TRE binding are important determinants of the formation of specific TR complexes in solution and on DNA.
Insights
Thyroid hormone receptors (TRs) form distinct complexes with DNA. T3 hormone influences TR homodimer binding to DNA, while TR/RXR heterodimers are unaffected, suggesting their role in gene activation.
Area of Science:
- Molecular Endocrinology
- Nuclear Receptor Signaling
- Gene Regulation
Background:
- Thyroid hormone receptors (TRs) regulate gene expression by binding to thyroid hormone response elements (TREs).
- TRs can form monomers, homodimers, or heterodimers with retinoid-X receptors (RXRs).
- The role of T3 and 9-cis RA on TR complex formation in solution and on DNA remains incompletely understood.
Purpose of the Study:
- To investigate the effect of T3 and 9-cis RA on TR beta 1 complex formation in solution and on DNA.
- To compare TR complex formation in solution versus on DNA.
- To elucidate the role of TR complexes in transcriptional regulation.
Main Methods:
- Coimmunoprecipitation assay using anti-TR beta 1 antibody.
- Electrophoretic mobility shift assay (EMSA) with the F2 TRE.
- Kinetic studies to analyze dissociation rates.
Main Results:
- In the absence of T3, TR beta 1 exists as a monomer in solution and forms homodimers on the F2 TRE.
- T3 promotes TR beta 1 to exist as a monomer in solution and prevents homodimer formation on F2 TRE.
- T3 significantly increases TR homodimer dissociation from F2 TRE.
- TR beta 1/RXR alpha heterodimers form in solution and more readily on F2 TRE.
- Neither T3 nor 9-cis RA significantly alters TR beta 1/RXR alpha heterodimer formation.
Conclusions:
- T3 binding and TRE interaction are critical for determining specific TR complex formation.
- TR homodimers are regulated by T3, while TR/RXR heterodimers are less affected, suggesting distinct roles in gene regulation.