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Updated: Mar 13, 2026

Co-immunoprecipitation of the Mouse Mx1 Protein with the Influenza A Virus Nucleoprotein
Published on: April 21, 2015
Acid activation mechanism of the influenza A M2 proton channel
Ruibin Liang1,2,3, Jessica M J Swanson1,2,3, Jesper J Madsen1,2,3
1Department of Chemistry, The University of Chicago, Chicago, IL 60637.
Abstract:
The homotetrameric influenza A M2 channel (AM2) is an acid-activated proton channel responsible for the acidification of the influenza virus interior, an important step in the viral lifecycle. Four histidine residues (His37) in the center of the channel act as a pH sensor and proton selectivity filter. Despite intense study, the pH-dependent activation mechanism of the AM2 channel has to date not been completely understood at a molecular level. Herein we have used multiscale computer simulations to characterize (with explicit proton transport free energy profiles and their associated calculated conductances) the activation mechanism of AM2. All proton transfer steps involved in proton diffusion through the channel, including the protonation/deprotonation of His37, are explicitly considered using classical, quantum, and reactive molecular dynamics methods. The asymmetry of the proton transport free energy profile under high-pH conditions qualitatively explains the rectification behavior of AM2 (i.e., why the inward proton flux is allowed when the pH is low in viral exterior and high in viral interior, but outward proton flux is prohibited when the pH gradient is reversed). Also, in agreement with electrophysiological results, our simulations indicate that the C-terminal amphipathic helix does not significantly change the proton conduction mechanism in the AM2 transmembrane domain; the four transmembrane helices flanking the channel lumen alone seem to determine the proton conduction mechanism.
Insights
Computer simulations reveal the activation mechanism of the influenza A M2 channel (AM2), a key proton channel in viral acidification. The study clarifies how AM2
Area of Science:
- Biophysics
- Virology
- Computational Biology
Background:
- The influenza A M2 channel (AM2) is crucial for viral acidification, facilitating the viral lifecycle.
- Its pH-dependent activation mechanism, involving histidine residues, remains incompletely understood at a molecular level.
Purpose of the Study:
- To elucidate the molecular-level activation mechanism of the AM2 proton channel.
- To characterize proton transport and free energy profiles using multiscale simulations.
Main Methods:
- Multiscale computer simulations combining classical, quantum, and reactive molecular dynamics.
- Explicit consideration of all proton transfer steps, including histidine protonation/deprotonation.
- Calculation of proton transport free energy profiles and channel conductances.
Main Results:
- The study provides explicit proton transport free energy profiles and calculated conductances for AM2.
- Asymmetric free energy profiles explain AM2's rectification behavior under varying pH conditions.
- Simulations suggest the transmembrane helices alone determine proton conduction, independent of the C-terminal helix.
Conclusions:
- The study offers a detailed molecular understanding of AM2 channel activation and proton transport.
- Findings explain the rectification properties of AM2, crucial for viral function.
- The transmembrane domain is identified as the primary determinant of proton conduction in AM2.
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