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Generation, Amplification, and Titration of Recombinant Respiratory Syncytial Viruses
Published on: April 4, 2019
Dimerization of matrix protein is required for budding of respiratory syncytial virus
Andreas Förster1, Goedele N Maertens2, Paul J Farrell3
1Centre for Structural Biology, Department of Life Sciences, Imperial College London, London, United Kingdom.
Unlabelled:
Respiratory syncytial virus (RSV) infects epithelial cells of the respiratory tract and is a major cause of bronchiolitis and pneumonia in children and the elderly. The virus assembles and buds through the plasma membrane, forming elongated membrane filaments, but details of how this happens remain obscure. Oligomerization of the matrix protein (M) is a key step in the process of assembly and infectious virus production. In addition, it was suggested to affect the conformation of the fusion protein, the major current target for RSV antivirals, in the mature virus. The structure and assembly of M are thus key parameters in the RSV antiviral development strategy. The structure of RSV M was previously published as a monomer. Other paramyxovirus M proteins have been shown to dimerize, and biochemical data suggest that RSV M also dimerizes. Here, using size exclusion chromatography-multiangle laser light scattering, we show that the protein is dimeric in solution. We also crystallized M in two crystal forms and show that it assembles into equivalent dimers in both lattices. Dimerization interface mutations destabilize the M dimer in vitro. To assess the biological relevance of dimerization, we used confocal imaging to show that dimerization interface mutants of M fail to assemble into viral filaments on the plasma membrane. Additionally, budding and release of virus-like particles are prevented in M mutants that fail to form filaments. Importantly, we show that M is biologically active as a dimer and that the switch from M dimers to higher-order oligomers triggers viral filament assembly and virus production.
Importance:
Human respiratory syncytial virus (RSV) is the most frequent cause of infantile bronchiolitis and pneumonia. The enormous burden of RSV makes it a major unmet target for a vaccine and antiviral drug therapy. Oligomerization of the matrix protein is a key step in the process of assembly and production of infectious virus, but the molecular mechanism of RSV assembly is still poorly understood. Here we show that the RSV matrix protein forms dimers in solution and in crystals; the dimer is essential for formation of higher-order oligomers. Destabilizing the dimer interface resulted in the loss of RSV filament formation and a lack of budding of virus-like particles. Importantly, our findings can potentially lead to new structure-based RSV inhibitors targeting the assembly process.
Insights
Respiratory syncytial virus (RSV) matrix protein (M) forms dimers, which are crucial for viral assembly and infectious virus production. Disrupting M dimerization prevents filament formation and virus-like particle release, offering new targets for RSV antivirals.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Respiratory syncytial virus (RSV) is a leading cause of respiratory illness in infants and the elderly.
- The assembly mechanism of RSV, particularly the role of the matrix protein (M), is not fully understood.
- Understanding M protein oligomerization is critical for developing antiviral therapies.
Purpose of the Study:
- To elucidate the oligomeric state of the RSV matrix protein (M).
- To investigate the role of M protein dimerization in viral assembly and infectious virus production.
- To explore the potential of targeting M protein dimerization for novel antiviral strategies.
Main Methods:
- Size exclusion chromatography-multiangle laser light scattering (SEC-MALS) to determine M protein's state in solution.
- Crystallography to determine the structure of M protein.
- Site-directed mutagenesis to destabilize the M dimer interface.
- Confocal imaging to assess viral filament formation and virus-like particle budding.
Main Results:
- RSV M protein exists as a dimer in solution and in crystal structures.
- Mutations at the dimerization interface destabilized the M dimer and prevented viral filament assembly.
- M dimer mutants failed to form filaments on the plasma membrane, inhibiting virus-like particle budding and release.
- M protein functions as a dimer, and its transition to higher-order oligomers triggers viral assembly.
Conclusions:
- The dimer is the biologically active form of the RSV M protein.
- M protein dimerization is essential for RSV assembly, filament formation, and infectious virus production.
- Targeting M protein dimerization presents a promising strategy for developing new RSV antivirals.
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