pH-Dependent Formation and Disintegration of the Influenza A Virus Protein Scaffold To Provide Tension for Membrane

O V Batishchev1, L A Shilova2, M V Kachala3

  • 1A. N. Frumkin Institute of Physical Chemistry and Electrochemistry, Russian Academy of Sciences, Moscow, Russia Moscow Institute of Physics and Technology, Dolgoprudniy, Russia olegbati@gmail.com.

Journal of Virology
|October 16, 2015
PubMed
Abstract

Insights

Acidification causes influenza virus matrix protein (M1) to disintegrate, promoting viral RNA release and cell infection. This study reveals the physical forces behind M1

Area of Science:

  • Biophysics
  • Virology
  • Molecular Biology

Background:

  • Influenza virus infects cells by entering endosomes, where acidification triggers viral protein changes.
  • The viral matrix protein (M1) forms a protective coat essential for viral integrity and infection.
  • Understanding M1's response to pH changes is crucial for developing antiviral strategies.

Purpose of the Study:

  • To investigate the physicochemical mechanism of pH-dependent disintegration of the influenza M1 protein.
  • To elucidate how M1 interactions with the viral lipid envelope change with decreasing pH.
  • To determine the role of M1 disintegration in facilitating viral genome release and cell entry.

Main Methods:

  • Studied M1 protein adsorption onto lipid bilayers in vitro at varying pH levels.
  • Analyzed M1-M1 and M1-lipid interactions using biophysical techniques.
  • Observed pH-dependent rupture of M1-coated lipid vesicles.

Main Results:

  • M1 adsorption to lipid bilayers is electrostatic and reversible in neutral pH.
  • Acidification (pH < 6) causes M1 conformational changes, leading to increased M1-M1 repulsion.
  • This repulsion induces M1 desorption and rupture of M1-coated lipid vesicles at pH 5.

Conclusions:

  • Influenza M1 protein disintegration is driven by pH-dependent electrostatic repulsion.
  • M1 scaffold disruption and associated membrane tension promote viral fusion pore widening.
  • This mechanism facilitates the release of the viral genome into the host cell cytoplasm.

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