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C-Terminal DxD-Containing Sequences within Paramyxovirus Nucleocapsid Proteins Determine Matrix Protein Compatibility
Greeshma Ray1, Phuong Tieu Schmitt1, Anthony P Schmitt2
1Department of Veterinary and Biomedical Sciences, The Pennsylvania State University, University Park, Pennsylvania, USA.
Unlabelled:
Paramyxovirus particles are formed by a budding process coordinated by viral matrix (M) proteins. M proteins coalesce at sites underlying infected cell membranes and induce other viral components, including viral glycoproteins and viral ribonucleoprotein complexes (vRNPs), to assemble at these locations from which particles bud. M proteins interact with the nucleocapsid (NP or N) components of vRNPs, and these interactions enable production of infectious, genome-containing virions. For the paramyxoviruses parainfluenza virus 5 (PIV5) and mumps virus, M-NP interaction also contributes to efficient production of virus-like particles (VLPs) in transfected cells. A DLD sequence near the C-terminal end of PIV5 NP protein was previously found to be necessary for M-NP interaction and efficient VLP production. Here, we demonstrate that 15-residue-long, DLD-containing sequences derived from either the PIV5 or Nipah virus nucleocapsid protein C-terminal ends are sufficient to direct packaging of a foreign protein, Renilla luciferase, into budding VLPs. Mumps virus NP protein harbors DWD in place of the DLD sequence found in PIV5 NP protein, and consequently, PIV5 NP protein is incompatible with mumps virus M protein. A single amino acid change converting DLD to DWD within PIV5 NP protein induced compatibility between these proteins and allowed efficient production of mumps VLPs. Our data suggest a model in which paramyxoviruses share an overall common strategy for directing M-NP interactions but with important variations contained within DLD-like sequences that play key roles in defining M/NP protein compatibilities.
Importance:
Paramyxoviruses are responsible for a wide range of diseases that affect both humans and animals. Paramyxovirus pathogens include measles virus, mumps virus, human respiratory syncytial virus, and the zoonotic paramyxoviruses Nipah virus and Hendra virus. Infectivity of paramyxovirus particles depends on matrix-nucleocapsid protein interactions which enable efficient packaging of encapsidated viral RNA genomes into budding virions. In this study, we have defined regions near the C-terminal ends of paramyxovirus nucleocapsid proteins that are important for matrix protein interaction and that are sufficient to direct a foreign protein into budding particles. These results advance our basic understanding of paramyxovirus genome packaging interactions and also have implications for the potential use of virus-like particles as protein delivery tools.
Insights
Paramyxovirus budding relies on matrix (M) and nucleocapsid (NP) protein interactions. Specific C-terminal sequences in NP proteins dictate M protein compatibility, influencing virus-like particle formation and foreign protein packaging.
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Paramyxoviruses cause significant human and animal diseases.
- Efficient viral particle assembly depends on matrix (M) and nucleocapsid (NP) protein interactions.
- Understanding these interactions is crucial for controlling viral infections and developing new delivery systems.
Purpose of the Study:
- To define C-terminal regions of paramyxovirus NP proteins critical for M protein interaction.
- To investigate the sufficiency of these regions for directing foreign protein packaging into budding particles.
- To elucidate the role of specific amino acid sequences in M-NP protein compatibility.
Main Methods:
- Analysis of C-terminal sequences in parainfluenza virus 5 (PIV5) and mumps virus NP proteins.
- Genetic manipulation of PIV5 NP protein to alter its C-terminal sequence (DLD to DWD).
- Production and analysis of virus-like particles (VLPs) in transfected cells to assess protein packaging and compatibility.
Main Results:
- A 15-residue C-terminal sequence containing DLD in PIV5 NP is sufficient for M protein interaction and VLP formation.
- DLD-containing sequences from PIV5 or Nipah virus NP can direct foreign protein (Renilla luciferase) packaging into VLPs.
- A DWD sequence in mumps virus NP confers incompatibility with PIV5 M protein; changing PIV5 NP to DWD restores compatibility.
Conclusions:
- Paramyxoviruses share a common strategy for M-NP interaction, with variations in C-terminal sequences playing a key role.
- Specific DLD-like motifs in NP proteins are critical determinants of M/NP protein compatibility.
- These findings advance understanding of paramyxovirus assembly and have implications for VLP-based protein delivery technologies.
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