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Nipah Virus Matrix Protein Influences Fusogenicity and Is Essential for Particle Infectivity and Stability
Erik Dietzel1, Larissa Kolesnikova1, Bevan Sawatsky2
1Institute of Virology, Philipps University Marburg, Marburg, Germany.
Unlabelled:
Nipah virus (NiV) causes fatal encephalitic infections in humans. To characterize the role of the matrix (M) protein in the viral life cycle, we generated a reverse genetics system based on NiV strain Malaysia. Using an enhanced green fluorescent protein (eGFP)-expressing M protein-deleted NiV, we observed a slightly increased cell-cell fusion, slow replication kinetics, and significantly reduced peak titers compared to the parental virus. While increased amounts of viral proteins were found in the supernatant of cells infected with M-deleted NiV, the infectivity-to-particle ratio was more than 100-fold reduced, and the particles were less thermostable and of more irregular morphology. Taken together, our data demonstrate that the M protein is not absolutely required for the production of cell-free NiV but is necessary for proper assembly and release of stable infectious NiV particles.
Importance:
Henipaviruses cause a severe disease with high mortality in human patients. Therefore, these viruses can be studied only in biosafety level 4 (BSL-4) laboratories, making it more challenging to characterize their life cycle. Here we investigated the role of the Nipah virus matrix protein in virus-mediated cell-cell fusion and in the formation and release of newly produced particles. We found that even though low levels of infectious viruses are produced in the absence of the matrix protein, it is required for the release of highly infectious and stable particles. Fusogenicity of matrixless viruses was slightly enhanced, further demonstrating the critical role of this protein in different steps of Nipah virus spread.
Insights
The Nipah virus matrix protein is not essential for producing cell-free virus but is crucial for assembling and releasing stable, infectious Nipah virus particles, impacting viral spread.
Area of Science:
- Virology
- Molecular Biology
- Infectious Diseases
Background:
- Nipah virus (NiV) causes severe, fatal encephalitis in humans.
- Henipaviruses necessitate study in high-containment BSL-4 laboratories, complicating research.
- The role of the matrix (M) protein in NiV replication and particle formation is not fully understood.
Purpose of the Study:
- To investigate the function of the Nipah virus matrix (M) protein in viral life cycle.
- To determine the M protein's role in cell-cell fusion and the formation/release of new viral particles.
- To characterize the impact of M protein deletion on NiV infectivity and particle stability.
Main Methods:
- Generation of a reverse genetics system for NiV strain Malaysia.
- Construction of an M protein-deleted NiV expressing eGFP.
- Analysis of cell-cell fusion, replication kinetics, viral protein release, particle infectivity, and thermostability.
Main Results:
- M protein deletion resulted in slightly increased cell-cell fusion but reduced replication and peak titers.
- Particles produced without M protein showed a >100-fold reduction in infectivity-to-particle ratio.
- M protein-deleted NiV particles were less thermostable and morphologically irregular.
Conclusions:
- The NiV M protein is not essential for producing cell-free virus particles.
- The M protein is critical for the proper assembly and release of stable, infectious NiV particles.
- M protein influences multiple stages of NiV spread, including particle infectivity and stability.
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