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Published on: November 21, 2017
Molecular dynamics simulations reveal multiple pathways of ligand dissociation from thyroid hormone receptors
Leandro Martínez1, Milton T Sonoda, Paul Webb
1Instituto de Química, Universidade Estadual de Campinas, Campinas SP 13084-862, Brazil.
Abstract:
Nuclear receptor (NR) ligands occupy a pocket that lies within the core of the NR ligand-binding domain (LBD), and most NR LBDs lack obvious entry/exit routes upon the protein surface. Thus, significant NR conformational rearrangements must accompany ligand binding and release. The precise nature of these processes, however, remains poorly understood. Here, we utilize locally enhanced sampling (LES) molecular dynamics computer simulations to predict molecular motions of x-ray structures of thyroid hormone receptor (TR) LBDs and determine events that permit ligand escape. We find that the natural ligand 3,5,3'-triiodo-L-thyronine (T(3)) dissociates from the TRalpha1 LBD along three competing pathways generated through i), opening of helix (H) 12; ii), separation of H8 and H11 and the Omega-loop between H2 and H3; and iii), opening of H2 and H3, and the intervening beta-strand. Similar pathways are involved in dissociation of T(3) and the TRbeta-selective ligand GC24 from TRbeta; the TR agonist IH5 from the alpha- and beta-TR forms; and Triac from two natural human TRbeta mutants, A317T and A234T, but are detected with different frequencies in simulations performed with the different structures. Path I was previously suggested to represent a major pathway for NR ligand dissociation. We propose here that Paths II and III are also likely ligand escape routes for TRs and other NRs. We also propose that different escape paths are preferred in different situations, implying that it will be possible to design NR ligands that only associate stably with their cognate receptors in specific cellular contexts.
Insights
Nuclear receptors (NRs) undergo conformational changes for ligand binding and release. This study reveals three distinct pathways for thyroid hormone receptor (TR) ligand dissociation, suggesting targeted drug design possibilities.
Area of Science:
- Structural Biology
- Computational Biochemistry
- Molecular Dynamics
Background:
- Nuclear receptors (NRs) bind ligands within their ligand-binding domain (LBD).
- NR LBDs typically lack clear surface entry/exit points for ligands.
- Ligand binding and release necessitate significant NR conformational changes, the mechanisms of which are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of ligand release from thyroid hormone receptors (TRs).
- To identify and characterize the pathways through which ligands dissociate from TR LBDs.
- To explore the implications for designing NR-specific ligands.
Main Methods:
- Locally enhanced sampling (LES) molecular dynamics simulations.
- Analysis of x-ray crystal structures of TR LBDs.
- Tracking ligand dissociation pathways.
Main Results:
- Identified three competing pathways for 3,5,3'-triiodo-L-thyronine (T(3)) dissociation from TRalpha1 LBD: H12 opening, H8/H11/Omega-loop separation, and H2/H3/beta-strand opening.
- Observed similar dissociation pathways for various ligands (T(3), GC24, IH5, Triac) across different TR subtypes and mutants.
- Pathway frequencies varied depending on the specific TR structure and ligand.
Conclusions:
- Propose that helix H12 opening, H8/H11/Omega-loop separation, and H2/H3/beta-strand opening are all viable ligand escape routes for TRs.
- Suggest that different escape pathways are utilized under different conditions.
- Imply that designing ligands with context-specific stable association is feasible.
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