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Molecular dynamics simulations on RORγt: insights into its functional agonism and inverse agonism
Cong-Min Yuan1, Hai-Hong Chen1, Nan-Nan Sun1
1Minhang Hospital and Department of Medicinal Chemistry at School of Pharmacy, Fudan University, 201203, Shanghai, China.
Abstract:
The retinoic acid receptor-related orphan receptor (ROR) γt receptor is a member of nuclear receptors, which is indispensable for the expression of pro-inflammatory cytokine IL-17. RORγt has been established as a drug target to design and discover novel treatments for multiple inflammatory and immunological diseases. It is important to elucidate the molecular mechanisms of how RORγt is activated by an agonist, and how the transcription function of RORγt is interrupted by an inverse agonist. In this study we performed molecular dynamics simulations on four different RORγt systems, i.e., the apo protein, protein bound with agonist, protein bound with inverse agonist in the orthosteric-binding pocket, and protein bound with inverse agonist in the allosteric-binding pocket. We found that the orthosteric-binding pocket in the apo-form RORγt was mostly open, confirming that apo-form RORγt was constitutively active and could be readily activated (ca. tens of nanoseconds scale). The tracked data from MD simulations supported that RORγt could be activated by an agonist binding at the orthosteric-binding pocket, because the bound agonist helped to enhance the triplet His479-Tyr502-Phe506 interactions and stabilized H12 structure. The stabilized H12 helped RORγt to form the protein-binding site, and therefore made the receptor ready to recruit a coactivator molecule. We also showed that transcription function of RORγt could be interrupted by the binding of inverse agonist at the orthosteric-binding pocket or at the allosteric-binding site. After the inverse agonist was bound, H12 either structurally collapsed, or reorientated to a different position, at which the presumed protein-binding site was not able to be formed.
Insights
Retinoic acid receptor-related orphan receptor gamma t (RORγt) is crucial for IL-17 production. Agonists activate RORγt by stabilizing its structure, while inverse agonists block its function by disrupting key interactions, offering new therapeutic strategies.
Area of Science:
- Molecular biology
- Immunology
- Pharmacology
Background:
- Retinoic acid receptor-related orphan receptor gamma t (RORγt) is a nuclear receptor vital for pro-inflammatory cytokine IL-17 expression.
- RORγt is a key drug target for inflammatory and immunological diseases.
- Understanding RORγt activation and inhibition mechanisms is crucial for drug development.
Purpose of the Study:
- To elucidate the molecular mechanisms of RORγt activation by agonists and inhibition by inverse agonists.
- To investigate the structural dynamics of RORγt in different binding states using molecular dynamics simulations.
Main Methods:
- Molecular dynamics (MD) simulations were performed on four RORγt systems: apo, agonist-bound, orthosteric inverse agonist-bound, and allosteric inverse agonist-bound.
- Analysis focused on the dynamics of the orthosteric-binding pocket and the H12 helix structure.
Main Results:
- Apo-form RORγt exhibited an open orthosteric-binding pocket, indicating constitutive activity.
- Agonist binding enhanced specific interactions (His479-Tyr502-Phe506) and stabilized the H12 structure, facilitating coactivator recruitment.
- Inverse agonists, whether bound orthosterically or allosterically, disrupted the H12 structure, preventing the formation of the protein-binding site and inhibiting RORγt function.
Conclusions:
- RORγt activation by agonists involves stabilization of the H12 helix and formation of a coactivator-binding site.
- Inverse agonists effectively inhibit RORγt by destabilizing the H12 helix, providing a molecular basis for their therapeutic potential in inflammatory diseases.
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