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Updated: Nov 19, 2025

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Published on: January 9, 2019
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.
Abstract:
A central role for the influenza matrix protein 1 (M1) is to form a polymeric coat on the inner leaflet of the host membrane that ultimately provides shape and stability to the virion. M1 polymerizes upon binding membranes, but triggers for conversion of M1 from a water-soluble component of the nucleus and cytosol into an oligomer at the membrane surface are unknown. While full-length M1 is required for virus viability, the N-terminal domain (M1NT) retains membrane binding and pH-dependent oligomerization. We studied the structural plasticity and oligomerization of M1NT in solution using NMR spectroscopy. We show that the isolated domain can be induced by sterol-containing compounds to undergo a conformational change and self-associate in a pH-dependent manner consistent with the stacked dimer oligomeric interface. Surface-exposed residues at one of the stacked dimer interfaces are most sensitive to sterols. Several perturbed residues are at the interface between the N-terminal subdomains and are also perturbed by changes in pH. The effects of sterols appear to be indirect and most likely mediated by reduction in water activity. The local changes are centered on strictly conserved residues and consistent with a priming of the N-terminal domain for polymerization. We hypothesize that M1NT is sensitive to changes in the aqueous environment and that this sensitivity is part of a mechanism for restricting polymerization to the membrane surface. Structural models combined with information from chemical shift perturbations indicate mechanisms by which conformational changes can be transmitted from one polymerization interface to the other.
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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