Conformational triggers associated with influenza matrix protein 1 polymerization

Faiz Mohd-Kipli1, Jolyon K Claridge2, Jelena Habjanič2

  • 1Department of Biochemistry, University of Oxford, Oxford, United Kingdom; Faculty of Science, Universiti Brunei Darussalam, Gadong, Brunei Darussalam.

Insights

Influenza matrix protein 1 (M1) N-terminal domain (M1NT) undergoes pH-dependent polymerization. Sterols, possibly by altering water activity, prime M1NT for polymerization at the host cell membrane surface.

Area of Science:

  • Virology
  • Structural Biology
  • Biochemistry

Background:

  • Influenza matrix protein 1 (M1) forms a structural coat essential for virion integrity.
  • The triggers for M1 polymerization at the host cell membrane remain unclear.
  • The M1 N-terminal domain (M1NT) retains membrane binding and pH-dependent oligomerization capabilities.

Purpose of the Study:

  • To investigate the structural plasticity and oligomerization of the M1 N-terminal domain (M1NT).
  • To elucidate the role of sterols and pH in M1NT conformational changes and self-association.

Main Methods:

  • Nuclear Magnetic Resonance (NMR) spectroscopy was employed to study M1NT in solution.
  • Analysis of chemical shift perturbations to identify conformational changes and interaction interfaces.
  • Structural modeling to understand the transmission of conformational changes.

Main Results:

  • Sterol-containing compounds induced pH-dependent conformational changes and self-association of M1NT.
  • Sterol effects appear indirect, mediated by reduced water activity, priming M1NT for polymerization.
  • Perturbed residues are conserved and located at subdomain interfaces, sensitive to both sterols and pH.

Conclusions:

  • M1NT is sensitive to changes in the aqueous environment, suggesting a mechanism for localized polymerization.
  • Sterol-mediated priming of M1NT may restrict polymerization to the membrane surface.
  • Conformational changes in M1NT are transmitted between polymerization interfaces, influencing viral assembly.

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