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.

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.