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.

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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