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.

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.

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