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Updated: Jun 26, 2026

Multi-target Parallel Processing Approach for Gene-to-structure Determination of the Influenza Polymerase PB2 Subunit
Published on: June 28, 2013
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
Abstract:
The M2 protein of the influenza A virus is activated by low endosomal pH and performs the essential function of proton transfer into the viral interior. The resulting decrease in pH within the virion is essential for the uncoating and further replication of the viral genetic material. The x-ray crystal [Stouffer AL, et al. (2008) Nature 451:596-599] and solution NMR [Schnell JR, Chou JJ (2008) Nature 451:591-595] structures of the transmembrane region of the M2 homo-tetrameric bundle both revealed pores with narrow constrictions at one end, leaving a question as to how protons enter the channel. His-37, which is essential for proton-gating and selective conduction of protons, lies in the pore of the crystallographic and NMR structures. Here, we explore the different protonation states of the His-37 residues of the M2 bundle in a bilayer using molecular dynamics (MD) simulations. When the His-37 residues are neutral, the protein prefers an Open(out)-Closed(in) conformation in which the channel is open to the environment on the outside of the virus but closed to the interior environment of the virus. Diffusion of protons into the channel from the outside of the virus and protonation of His-37 residues in the tetramer stabilizes an oppositely gated Closed(out)-Open(in) conformation. Thus, protons might be conducted through a transporter-like mechanism, in which the protein alternates between Open(out)-Closed(in) and Closed(out)-Open(in) conformations, and His-37 is protonated/deprotonated during each turnover. The transporter-like mechanism is consistent with the known properties of the M2 bundle, including its relatively low rate of proton flux and its strong rectifying behavior.
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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