Molecular dynamics calculations suggest a conduction mechanism for the M2 proton channel from influenza A virus

Ekta Khurana1, Matteo Dal Peraro, Russell DeVane

  • 1Department of Chemistry, University of Pennsylvania, Philadelphia, PA 19104-6323, USA. ekta.khurana@yale.edu

Insights

Influenza A virus M2 protein facilitates proton transfer for viral replication. Molecular dynamics simulations reveal a transporter-like mechanism involving His-37 protonation states and conformational changes for proton conduction.

Area of Science:

  • Structural biology
  • Virology
  • Computational biophysics

Background:

  • The influenza A virus M2 protein is a proton channel crucial for viral uncoating and replication, activated by low endosomal pH.
  • Previous structural studies revealed narrow constrictions in the M2 channel, posing questions about proton entry mechanisms.
  • Histidine-37 (His-37) residues are known to be essential for proton gating and selective conduction within the M2 channel.

Purpose of the Study:

  • To investigate the protonation states of His-37 residues in the M2 bundle within a lipid bilayer.
  • To elucidate the mechanism of proton conduction through the M2 channel using molecular dynamics simulations.

Main Methods:

  • Molecular dynamics (MD) simulations were employed to study the M2 bundle embedded in a bilayer.
  • Analysis focused on the different protonation states of the His-37 residues and their impact on channel conformation.

Main Results:

  • Neutral His-37 residues favor an Open(out)-Closed(in) conformation, with the channel open externally but closed internally.
  • Proton influx and His-37 protonation stabilize a Closed(out)-Open(in) conformation, facilitating internal proton transfer.
  • The M2 protein likely operates via a transporter-like mechanism, alternating between these conformations with His-37 protonation/deprotonation.

Conclusions:

  • The M2 protein functions through a gated, transporter-like mechanism involving dynamic changes in His-37 protonation and channel conformation.
  • This mechanism explains the observed low proton flux rate and strong rectifying behavior of the M2 channel.
  • Understanding this mechanism provides insights into influenza virus replication and potential antiviral strategies.

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