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Updated: May 4, 2026

In Vitro Disassembly of Influenza A Virus Capsids by Gradient Centrifugation
Published on: March 27, 2016
Structural analysis of influenza A virus matrix protein M1 and its self-assemblies at low pH
Eleonora V Shtykova1, Lyudmila A Baratova2, Natalia V Fedorova2
1Shubnikov Institute of Crystallography, Russian Academy of Sciences, Moscow, Russia.
Abstract:
Influenza A virus matrix protein M1 is one of the most important and abundant proteins in the virus particles broadly involved in essential processes of the viral life cycle. The absence of high-resolution data on the full-length M1 makes the structural investigation of the intact protein particularly important. We employed synchrotron small-angle X-ray scattering (SAXS), analytical ultracentrifugation and atomic force microscopy (AFM) to study the structure of M1 at acidic pH. The low-resolution structural models built from the SAXS data reveal a structurally anisotropic M1 molecule consisting of a compact NM-fragment and an extended and partially flexible C-terminal domain. The M1 monomers co-exist in solution with a small fraction of large clusters that have a layered architecture similar to that observed in the authentic influenza virions. AFM analysis on a lipid-like negatively charged surface reveals that M1 forms ordered stripes correlating well with the clusters observed by SAXS. The free NM-domain is monomeric in acidic solution with the overall structure similar to that observed in previously determined crystal structures. The NM-domain does not spontaneously self assemble supporting the key role of the C-terminus of M1 in the formation of supramolecular structures. Our results suggest that the flexibility of the C-terminus is an essential feature, which may be responsible for the multi-functionality of the entire protein. In particular, this flexibility could allow M1 to structurally organise the viral membrane to maintain the integrity and the shape of the intact influenza virus.
Insights
Influenza A virus matrix protein M1 (M1) has a flexible C-terminus crucial for its function. This flexibility allows M1 to organize the viral membrane, maintaining influenza virus integrity and shape.
Area of Science:
- Virology
- Structural Biology
- Biochemistry
Background:
- Influenza A virus matrix protein M1 (M1) is vital for viral life cycle processes.
- High-resolution structural data for full-length M1 is lacking, hindering detailed investigation.
Purpose of the Study:
- To investigate the structure of the intact M1 protein at acidic pH.
- To understand the role of M1's domains in its structural organization and function.
Main Methods:
- Synchrotron small-angle X-ray scattering (SAXS) for low-resolution structural modeling.
- Analytical ultracentrifugation to study M1 in solution.
- Atomic force microscopy (AFM) to visualize M1 on surfaces.
Main Results:
- SAXS revealed M1 as structurally anisotropic, with a compact N-terminal (NM) domain and a flexible C-terminal domain.
- M1 monomers coexist with layered clusters resembling those in virions.
- AFM showed M1 forming ordered stripes on charged surfaces, correlating with SAXS clusters.
- The NM-domain is monomeric and does not self-assemble, highlighting the C-terminus's role in supramolecular assembly.
Conclusions:
- M1's C-terminal flexibility is essential for its multi-functionality.
- This flexibility enables M1 to organize the viral membrane, maintaining influenza virus integrity and shape.
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