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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.
Unlabelled:
Influenza virus is taken up from a pH-neutral extracellular milieu into an endosome, whose contents then acidify, causing changes in the viral matrix protein (M1) that coats the inner monolayer of the viral lipid envelope. At a pH of ~6, M1 interacts with the viral ribonucleoprotein (RNP) in a putative priming stage; at this stage, the interactions of the M1 scaffold coating the lipid envelope are intact. The M1 coat disintegrates as acidification continues to a pH of ~5 to clear a physical path for the viral genome to transit from the viral interior to the cytoplasm. Here we investigated the physicochemical mechanism of M1's pH-dependent disintegration. In neutral media, the adsorption of M1 protein on the lipid bilayer was electrostatic in nature and reversible. The energy of the interaction of M1 molecules with each other in M1 dimers was about 10 times as weak as that of the interaction of M1 molecules with the lipid bilayer. Acidification drives conformational changes in M1 molecules due to changes in the M1 charge, leading to alterations in their electrostatic interactions. Dropping the pH from 7.1 to 6.0 did not disturb the M1 layer; dropping it lower partially desorbed M1 because of increased repulsion between M1 monomers still stuck to the membrane. Lipid vesicles coated with M1 demonstrated pH-dependent rupture of the vesicle membrane, presumably because of the tension generated by this repulsive force. Thus, the disruption of the vesicles coincident with M1 protein scaffold disintegration at pH 5 likely stretches the lipid membrane to the point of rupture, promoting fusion pore widening for RNP release.
Importance:
Influenza remains a top killer of human beings throughout the world, in part because of the influenza virus's rapid binding to cells and its uptake into compartments hidden from the immune system. To attack the influenza virus during this time of hiding, we need to understand the physical forces that allow the internalized virus to infect the cell. In particular, we need to know how the protective coat of protein inside the viral surface reacts to the changes in acid that come soon after internalization. We found that acid makes the molecules of the protein coat push each other while they are still stuck to the virus, so that they would like to rip the membrane apart. This ripping force is known to promote membrane fusion, the process by which infection actually occurs.
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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