Related Experiment Video
Updated: Dec 29, 2025

In Vitro Disassembly of Influenza A Virus Capsids by Gradient Centrifugation
Published on: March 27, 2016
M2 amphipathic helices facilitate pH-dependent conformational transition in influenza A virus
Hedieh Torabifard1, Afra Panahi2, Charles L Brooks3,4
1Department of Chemistry, University of Michigan, Ann Arbor, MI 48109.
Abstract:
The matrix-2 (M2) protein from influenza A virus is a tetrameric, integral transmembrane (TM) protein that plays a vital role in viral replication by proton flux into the virus. The His37 tetrad is a pH sensor in the center of the M2 TM helix that activates the channel in response to the low endosomal pH. M2 consists of different regions that are believed to be involved in membrane targeting, packaging, nucleocapsid binding, and proton transport. Although M2 has been the target of many experimental and theoretical studies that have led to significant insights into its structure and function under differing conditions, the main mechanism of proton transport, its conformational dynamics, and the role of the amphipathic helices (AHs) on proton conductance remain elusive. To this end, we have applied explicit solvent constant pH molecular dynamics using the multisite λ-dynamics approach (CpHMDMSλD) to investigate the buried ionizable residues comprehensively and to elucidate their effect on the conformational transition. Our model recapitulates the pH-dependent conformational transition of M2 from closed to open state when the AH domain is included in the M2 construct, revealing the role of the amphipathic helices on this transition and shedding light on the proton-transport mechanism. This work demonstrates the importance of including the amphipathic helices in future experimental and theoretical studies of ion channels. Finally, our work shows that explicit solvent CpHMDMSλD provides a realistic pH-dependent model for membrane proteins.
Insights
Influenza A virus M2 protein proton transport mechanism remains elusive. New simulations reveal amphipathic helices are crucial for M2 channel opening and proton conductance.
Area of Science:
- Biophysics
- Virology
- Computational Biology
Background:
- The matrix-2 (M2) protein is an integral transmembrane protein essential for influenza A virus replication.
- M2 facilitates proton influx into the virus, a process regulated by pH changes.
- The precise mechanism of proton transport and the role of M2's structural domains are not fully understood.
Purpose of the Study:
- To investigate the role of buried ionizable residues and amphipathic helices in M2 protein function.
- To elucidate the conformational dynamics and proton transport mechanism of the M2 channel.
- To develop a realistic pH-dependent model for membrane proteins.
Main Methods:
- Explicit solvent constant pH molecular dynamics (CpHMDMSλD) simulations were employed.
- The study focused on the His37 tetrad and its role as a pH sensor.
- The M2 protein construct included the amphipathic helix (AH) domain.
Main Results:
- The CpHMDMSλD model successfully reproduced the pH-dependent conformational transition of M2 from a closed to an open state.
- The inclusion of amphipathic helices was shown to be critical for this pH-induced transition.
- The study provided insights into the proton transport mechanism through the M2 channel.
Conclusions:
- Amphipathic helices play a significant role in the conformational changes and proton conductance of the M2 channel.
- Explicit solvent CpHMDMSλD simulations offer a realistic approach for studying pH-dependent membrane protein dynamics.
- Future studies on ion channels should consider the inclusion of amphipathic helices.
More Related Videos
22:10Multi-target Parallel Processing Approach for Gene-to-structure Determination of the Influenza Polymerase PB2 Subunit
Published on: June 28, 2013
08:55Characterization of Multi-subunit Protein Complexes of Human MxA Using Non-denaturing Polyacrylamide Gel-electrophoresis
Published on: October 28, 2016
Related Concept Videos
Leaky Scanning
Protein Folding
Protein Structure Is Critical to Its Biological Function
Proteins perform a wide range of biological functions such as catalyzing chemical reactions, providing...
Protein Folding
Viral Structure
Protein Complex Assembly
Many viruses self-assemble into a fully functional unit using the infected host cell to...
Molecular Chaperones and Protein Folding
The...