Analysis by metadynamics simulation of binding pathway of influenza virus M2 channel blockers
Yuri Sakai1, Atsushi Kawaguchi1,2,3, Kyosuke Nagata2
1PhD Program in Human Biology, School of Integrative and Global Majors, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, 305-8575, Japan.
Abstract:
M2 protein of influenza A virus is a proton channel spanning the viral envelope. Activity of this proton channel is required for uncoating of viral particles and equilibrating the pH across the trans Golgi apparatus, which prevents conformational change in hemagglutinin. Amantadine, an anti-influenza A virus drug, inhibits M2 proton channel activity by binding to the channel pore; however, most currently circulating influenza A viruses are amantadine-resistant. The most prevalent resistant mutation is a substitution from Ser31 to Asn31 in M2. Further atomistic analysis of ligand-M2 complexes is needed to provide new approaches for the design of novel M2 channel blockers. Here, the free energy profiles of the binding kinetics of M2 channel blockers were examined by well-tempered metadynamics simulations and it was found that amantadine first binds to Asp24 of S31 M2 and forms a metastable conformation. In contrast, the free energy profiles of adamantyl bromothiophene dual inhibitor with either S31 M2 or N31 M2 are broad funnel-shaped curves, suggesting that adamantyl bromothiophene does not form metastable complexes with M2. The trajectory of well-tempered metadynamics simulations revealed that steric hindrance between adamantyl bromothiophene and S31 M2 interrupts formation of a metastable conformation at Asp24 and that a halogen bond between the bromine atom and N31 is responsible for pulling down the ligand to the channel pore of N31 M2 in the absence of a metastable state. Binding pathways of M2 channel blockers to M2 are here proposed on the basis of these findings; they may provide new approaches to designing further M2 channel blockers.
Insights
New research explores how influenza A virus M2 proton channel blockers bind. Understanding these pathways, especially with amantadine resistance, can guide the development of novel antiviral drugs.
Area of Science:
- Virology
- Structural Biology
- Computational Chemistry
Background:
- Influenza A virus M2 protein is a proton channel essential for viral replication.
- Amantadine resistance is common due to mutations like Ser31Asn.
- Novel M2 channel blockers are needed to combat resistant strains.
Purpose of the Study:
- To investigate the binding kinetics and pathways of M2 channel blockers.
- To understand the differences in binding between amantadine and a novel dual inhibitor.
- To provide insights for designing new influenza A virus M2 inhibitors.
Main Methods:
- Well-tempered metadynamics simulations were used to analyze free energy profiles.
- Atomistic analysis of ligand-M2 complexes was performed.
- Binding trajectories were examined to elucidate interaction mechanisms.
Main Results:
- Amantadine forms a metastable complex with wild-type S31 M2.
- A novel adamantyl bromothiophene inhibitor shows broad funnel-shaped free energy profiles, indicating no metastable complex formation.
- Steric hindrance and halogen bonding influence the binding of the novel inhibitor to both S31 M2 and N31 M2 variants.
Conclusions:
- The binding mechanisms of M2 channel blockers differ significantly.
- Halogen bonding plays a crucial role in the interaction of adamantyl bromothiophene with N31 M2.
- These findings offer a basis for designing next-generation M2 channel blockers against amantadine-resistant influenza A viruses.
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