Molecular dynamics simulations reveal the selectivity mechanism of structurally similar agonists to TLR7 and TLR8

Xiaoyu Wang1, Yu Chen1, Steven Zhang2

  • 1Computational Chemistry Department, Shanghai ChemPartner Co., Ltd., Shanghai, China.

Plos One
|April 22, 2022
PubMed

Insights

Toll-like receptors 7 and 8 (TLR7/8) are key in immunity. Molecular simulations reveal imidazoquinoline derivatives bind TLR7 more favorably than TLR8, driven by van der Waals interactions, aiding selective drug design.

Area of Science:

  • Immunology and Molecular Biology
  • Computational Chemistry and Drug Design

Background:

  • Toll-like receptors 7 and 8 (TLR7/8) are crucial for innate immunity and therapeutic targets for infections and cancer.
  • Despite high sequence homology, TLR7 and TLR8 exhibit distinct responses to small molecule agonists.
  • Understanding selective binding mechanisms is vital for developing targeted immunomodulatory therapies.

Purpose of the Study:

  • To elucidate the molecular mechanisms underlying the selective binding of imidazoquinoline derivatives to TLR7 versus TLR8.
  • To investigate the conformational dynamics and binding interactions of Resiquimod, Hybrid-2, and Gardiquimod with TLR7 and TLR8.
  • To provide insights for designing more potent and selective TLR7/8 modulators.

Main Methods:

  • Molecular dynamic (MD) simulations were performed on three imidazoquinoline derivatives (Resiquimod, Hybrid-2, Gardiquimod) bound to TLR7 and TLR8.
  • Conformational analysis of receptor-ligand complexes was conducted over 400ns simulation time.
  • Binding free energies were calculated using the MM-GBSA method to quantify selectivity.

Main Results:

  • MD trajectories showed TLR7 dimers adopting an 'open' conformation with specific agonists, while other systems remained 'closed'.
  • Agonists induced conformational changes primarily in their aliphatic tails, with Hybrid-2 showing stronger van der Waals interactions in TLR7.
  • MM-GBSA analysis indicated favorable binding of all three modulators to TLR7 over TLR8, with selectivity ranking: Hybrid-2 > Resiquimod > Gardiquimod.

Conclusions:

  • Van der Waals interactions, particularly involving the aliphatic side chains of agonists and hydrophobic residues in the TLR7 binding pocket, drive selective binding.
  • The differential interactions explain the observed agonist selectivity profiles and varying potencies.
  • These findings offer valuable guidance for the rational design of novel, selective TLR7 and TLR8 agonists.

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