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In Vitro Disassembly of Influenza A Virus Capsids by Gradient Centrifugation
Published on: March 27, 2016
Activation and proton transport mechanism in influenza A M2 channel
1NASA Ames Research Center, Moffett Field, California; Department of Pharmaceutical Chemistry, University of California, San Francisco, San Francisco, California.
Abstract:
Molecular dynamics trajectories 2 μs in length have been generated for the pH-activated, tetrameric M2 proton channel of the influenza A virus in all protonation states of the pH sensor located at the His(37) tetrad. All simulated structures are in very good agreement with high-resolution structures. Changes in the channel caused by progressive protonation of His(37) provide insight into the mechanism of proton transport. The channel is closed at both His(37) and Trp(41) sites in the singly and doubly protonated states, but it opens at Trp(41) upon further protonation. Anions access the charged His(37) and by doing so stabilize the protonated states of the channel. The narrow opening at the His(37) site, further blocked by anions, is inconsistent with the water-wire mechanism of proton transport. Instead, conformational interconversions of His(37) correlated with hydrogen bonding to water molecules indicate that these residues shuttle protons in high-protonation states. Hydrogen bonds between charged and uncharged histidines are rare. The valve at Val(27) remains on average quite narrow in all protonation states but fluctuates sufficiently to support water and proton transport. A proton transport mechanism in which the channel, depending on pH, opens at either the histidine or valine gate is only partially supported by the simulations.
Insights
Influenza A virus M2 channel proton transport is pH-dependent. Simulations show His(37) protonation alters channel gating, suggesting a histidine-shuttling mechanism rather than a water-wire, especially at high protonation states.
Area of Science:
- Biophysics
- Structural Biology
- Virology
Background:
- The M2 proton channel of influenza A virus is a key target for antiviral drugs.
- Understanding its pH-dependent proton transport mechanism is crucial for drug development.
Purpose of the Study:
- To investigate the molecular mechanisms of proton transport through the influenza A virus M2 channel.
- To elucidate the role of His(37) protonation states in channel gating and function.
Main Methods:
- Generated 2 μs molecular dynamics trajectories for the M2 channel.
- Simulated all protonation states of the His(37) tetrad.
- Analyzed channel structure, gating, and interactions with water and anions.
Main Results:
- Channel gating is modulated by His(37) protonation, with opening observed at Trp(41) upon further protonation.
- Anion binding stabilizes protonated states and hinders water-wire transport.
- Histidine residues appear to shuttle protons via conformational changes and hydrogen bonding in high-protonation states.
- The Val(27) gate remains narrow but fluctuates, allowing water and proton passage.
Conclusions:
- Proton transport is not solely via a water-wire mechanism.
- Histidine residues play an active role in proton shuttling, particularly at higher pH.
- The M2 channel gating mechanism is complex, involving interplay between histidine and valine gates, influenced by pH and anion presence.
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