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Published on: July 26, 2017
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.
Abstract:
TLR7 and TLR8 are key members of the Toll-like receptor family, playing crucial roles in the signaling pathways of innate immunity, and thus become attractive therapeutic targets of many diseases including infections and cancer. Although TLR7 and TLR8 show a high degree of sequence homology, their biological response to small molecule binding is very different. Aiming to understand the mechanism of selective profiles of small molecule modulators against TLR7 and TLR8, we carried out molecular dynamic simulations on three imidazoquinoline derivatives bound to the receptors separately. They are Resiquimod (R), Hybrid-2 (H), and Gardiquimod (G), selective agonists of TLR7 and TLR8. Our MD trajectories indicated that in the complex of TLR7-R and TLR7-G, the two chains forming the TLR7 dimer tended to remain "open" conformation, while the rest systems maintained in the closed format. The agonists R, H, and G developed conformational deviation mainly on the aliphatic tail. Furthermore, we attempted to quantify the selectivity between TLR7 and TLR8 by binding free energies via MM-GBSA method. It showed that the three selected modulators were more favorable for TLR7 than TLR8, and the ranking from the strongest to the weakest was H, R and G, aligning well with experimental data. In the TLR7, the flexible and hydrophobic aliphatic side chain of H has stronger van der Waals interactions with V381 and F351 but only pick up interaction with one amino acid residue i.e. Y353 of TLR8. Unsurprisingly, the positively charged side chain of G has less favorable interaction with I585 of TLR7 and V573 of TLR8 explaining G is weak agonist of both TLR7 and TLR8. All three imidazoquinoline derivatives can form stable hydrogen bonds with D555 of TLR7 and the corresponding D543 of TLR8. In brief, the set of total 400ns MD studies sheds light on the potential selectivity mechanisms of agonists towards TLR7 and TLR8, indicating the van der Waals interaction as the driving force for the agonists binding, thus provides us insights for designing more potent and selective modulators to cooperate with the hydrophobic nature of the binding pocket.
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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