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Coronavirus particle assembly: primary structure requirements of the membrane protein
C A de Haan1, L Kuo, P S Masters
1Institute of Virology, Department of Infectious Diseases and Immunology, Faculty of Veterinary Medicine, and Institute of Biomembranes, Utrecht University, 3584 CL Utrecht, The Netherlands.
Abstract:
Coronavirus-like particles morphologically similar to normal virions are assembled when genes encoding the viral membrane proteins M and E are coexpressed in eukaryotic cells. Using this envelope assembly assay, we have studied the primary sequence requirements for particle formation of the mouse hepatitis virus (MHV) M protein, the major protein of the coronavirion membrane. Our results show that each of the different domains of the protein is important. Mutations (deletions, insertions, point mutations) in the luminal domain, the transmembrane domains, the amphiphilic domain, or the carboxy-terminal domain had effects on the assembly of M into enveloped particles. Strikingly, the extreme carboxy-terminal residue is crucial. Deletion of this single residue abolished particle assembly almost completely; most substitutions were strongly inhibitory. Site-directed mutations in the carboxy terminus of M were also incorporated into the MHV genome by targeted recombination. The results supported a critical role for this domain of M in viral assembly, although the M carboxy terminus was more tolerant of alteration in the complete virion than in virus-like particles, likely because of the stabilization of virions by additional intermolecular interactions. Interestingly, glycosylation of M appeared not essential for assembly. Mutations in the luminal domain that abolished the normal O glycosylation of the protein or created an N-glycosylated form had no effect. Mutant M proteins unable to form virus-like particles were found to inhibit the budding of assembly-competent M in a concentration-dependent manner. However, assembly-competent M was able to rescue assembly-incompetent M when the latter was present in low amounts. These observations support the existence of interactions between M molecules that are thought to be the driving force in coronavirus envelope assembly.
Insights
The mouse hepatitis virus (MHV) M protein
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- The M protein is crucial for coronavirus envelope assembly.
- Understanding M protein's role is key to understanding viral structure and replication.
Purpose of the Study:
- To investigate the primary sequence requirements for mouse hepatitis virus (MHV) M protein assembly into virus-like particles.
- To identify critical domains and residues within the M protein essential for particle formation.
Main Methods:
- Utilized an envelope assembly assay by coexpressing M and E proteins in eukaryotic cells.
- Introduced various mutations (deletions, insertions, point mutations) in different M protein domains.
- Performed site-directed mutagenesis and targeted recombination to study M protein function in the MHV genome.
Main Results:
- All domains of the M protein are important for particle assembly.
- The extreme carboxy-terminal residue is critical; its deletion abolishes assembly.
- Mutant M proteins inhibit assembly-competent M, suggesting M-M interactions drive assembly.
- Glycosylation of M is not essential for assembly.
Conclusions:
- The M protein's carboxy terminus plays a vital role in coronavirus envelope assembly.
- Intermolecular interactions between M proteins are the primary driving force for coronavirus assembly.
- M protein domains are essential for proper viral particle formation and budding.