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Analyses of Coronavirus Assembly Interactions with Interspecies Membrane and Nucleocapsid Protein Chimeras
Lili Kuo1, Kelley R Hurst-Hess1, Cheri A Koetzner1
1Wadsworth Center, New York State Department of Health, Albany, New York, USA.
Unlabelled:
The coronavirus membrane (M) protein is the central actor in virion morphogenesis. M organizes the components of the viral membrane, and interactions of M with itself and with the nucleocapsid (N) protein drive virus assembly and budding. In order to further define M-M and M-N interactions, we constructed mutants of the model coronavirus mouse hepatitis virus (MHV) in which all or part of the M protein was replaced by its phylogenetically divergent counterpart from severe acute respiratory syndrome coronavirus (SARS-CoV). We were able to obtain viable chimeras containing the entire SARS-CoV M protein as well as mutants with intramolecular substitutions that partitioned M protein at the boundaries between the ectodomain, transmembrane domains, or endodomain. Our results show that the carboxy-terminal domain of N protein, N3, is necessary and sufficient for interaction with M protein. However, despite some previous genetic and biochemical evidence that mapped interactions with N to the carboxy terminus of M, it was not possible to define a short linear region of M protein sufficient for assembly with N. Thus, interactions with N protein likely involve multiple linearly discontiguous regions of the M endodomain. The SARS-CoV M chimera exhibited a conditional growth defect that was partially suppressed by mutations in the envelope (E) protein. Moreover, virions of the M chimera were markedly deficient in spike (S) protein incorporation. These findings suggest that the interactions of M protein with both E and S protein are more complex than previously thought.
Importance:
The assembly of coronavirus virions entails concerted interactions among the viral structural proteins and the RNA genome. One strategy to study this process is through construction of interspecies chimeras that preserve or disrupt particular inter- or intramolecular associations. In this work, we replaced the membrane (M) protein of the model coronavirus mouse hepatitis virus with its counterpart from a heterologous coronavirus. The results clarify our understanding of the interaction between the coronavirus M protein and the nucleocapsid protein. At the same time, they reveal unanticipated complexities in the interactions of M with the viral spike and envelope proteins.
Insights
Investigating coronavirus assembly, this study used chimeric membrane (M) proteins to reveal that M interacts with nucleocapsid (N) protein via multiple regions, not a single site. These M protein interactions with envelope (E) and spike (S) proteins are also complex.
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Coronavirus virion assembly involves intricate interactions between structural proteins and the genome.
- The membrane (M) protein is crucial for organizing viral components and driving assembly and budding.
- Interspecies chimeras are valuable tools for dissecting protein-protein interactions in viral systems.
Purpose of the Study:
- To define the interaction interfaces between coronavirus M and nucleocapsid (N) proteins.
- To investigate the role of M protein domains in virus assembly and morphogenesis.
- To explore the impact of M protein substitutions on interactions with other viral proteins like envelope (E) and spike (S).
Main Methods:
- Construction of mouse hepatitis virus (MHV) chimeras with severe acute respiratory syndrome coronavirus (SARS-CoV) M protein.
- Analysis of M-M and M-N protein interactions using chimeric constructs.
- Assessment of viral growth and protein incorporation in chimera-infected cells.
Main Results:
- The carboxy-terminal domain of N protein (N3) is necessary and sufficient for M protein interaction.
- Coronavirus M-N protein interaction involves multiple, discontiguous regions within the M endodomain.
- SARS-CoV M chimeras showed conditional growth defects, partially suppressed by E protein mutations, and reduced S protein incorporation.
Conclusions:
- Coronavirus M protein interactions with N protein are complex, involving multiple discontinuous regions.
- The interactions of M protein with E and S proteins are more intricate than previously understood.
- Chimeric M proteins provide insights into the structural requirements for coronavirus assembly and protein incorporation.
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