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Updated: May 9, 2026

Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
Molecular modeling revealed that ligand dissociation from thyroid hormone receptors is affected by receptor
Shulin Zhuang1, Lingling Bao, Apichart Linhananta
1College of Environmental and Resource Sciences, Zhejiang University, Hangzhou 310058, PR China. shulin@zju.edu.cn
Abstract:
Numerous ligands bind tightly to thyroid hormone receptors (TRs), and exploring the binding and dissociation of these ligands from TRs will increase our understanding of their mechanisms of action. TRs form transcriptionally active heterodimers with retinoid X receptor (RXR); whether this heterodimerization affects ligand dissociation is poorly understood. To investigate the effects of heterodimerization, classical molecular dynamics (MD) simulations and random acceleration molecular dynamics (RAMD) simulations were performed to probe the dissociation of triiodothyronine (T3) from a TRα-RXR ligand binding domain (LBD) heterodimer and the TRα and TRβ LBDs at the atomic level. Seven (I-VII) dissociation pathways were identified for T3. Heterodimerization inhibited pathway I in the TRα-RXR LBD heterodimer, which may block the proper orientation of the helix 12 (H12), therefore affecting the biological functions of TRs. Upon TR heterodimerization, the second most dominant dissociation pathway switched from pathway IV for TRα LBD to pathway II for TRα-RXR LBD. No significant effects of TR heterodimerization were observed on the dominant dissociation pathway III that was located between H3, the H1-H2 loop and the β-sheet. Our study revealed that TR heterodimerization significantly affects T3 dissociation, which provides important information for the study of other TR ligands.
Insights
Thyroid hormone receptor (TR) heterodimerization with retinoid X receptor (RXR) significantly alters how triiodothyronine (T3) dissociates from TRs. This finding impacts understanding TR ligand interactions and biological functions.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- Thyroid hormone receptors (TRs) are crucial regulators of gene expression.
- TRs form heterodimers with retinoid X receptors (RXRs), influencing their function.
- The effect of heterodimerization on ligand dissociation from TRs is not well understood.
Purpose of the Study:
- To investigate the impact of TR-RXR heterodimerization on the dissociation pathways of triiodothyronine (T3).
- To elucidate the atomic-level mechanisms governing T3 dissociation from TR ligand-binding domains (LBDs).
Main Methods:
- Classical molecular dynamics (MD) simulations.
- Random acceleration molecular dynamics (RAMD) simulations.
- Analysis of T3 dissociation pathways from TRα-RXR LBD heterodimers and individual TRα and TRβ LBDs.
Main Results:
- Seven distinct T3 dissociation pathways were identified.
- Heterodimerization inhibited a key pathway (Pathway I) in TRα-RXR LBD, potentially affecting helix 12 orientation.
- The dominant T3 dissociation pathway shifted from IV to II upon TR heterodimerization.
- Pathway III, involving H3, H1-H2 loop, and β-sheet, remained unaffected by heterodimerization.
Conclusions:
- TR heterodimerization significantly modulates T3 dissociation dynamics.
- Understanding these altered pathways is vital for studying other TR ligands and TR-mediated biological functions.
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