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The NS2 polypeptide of parvovirus MVM is required for capsid assembly in murine cells
S F Cotmore1, A M D'Abramo, L F Carbonell
1Department of Laboratory Medicine, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
Abstract:
Mutants of minute virus of mice (MVM) which express truncated forms of the NS2 polypeptide are known to exhibit a host range defect, replicating productively in transformed human cells but not in cells from their normal murine host. To explore this deficiency we generated viruses with translation termination codons at various positions in the second exon of NS2. In human cells these mutants were viable, but showed a late defect in progeny virion release which put them at a selective disadvantage compared to the wildtype. In murine cells, however, duplex viral DNA amplification was reduced to 5% of wildtype levels and single-strand DNA synthesis was undetectable. These deficiencies could not be attributed to a failure to initiate infection or to a generalized defect in viral gene expression, since the viral replicator protein NS1 was expressed to normal or elevated levels early in infection. In contrast, truncated NS2 gene products failed to accumulate, so that each mutant exhibited a similar NS2-null phenotype. Expression of the capsid polypeptides VP1 and VP2 and their subsequent assembly into intact particles were examined in detail. Synchronized infected cell populations labeled under pulse-chase conditions were analyzed by differential immunoprecipitation of native or denatured extracts using antibodies which discriminated between intact particles and isolated polypeptide chains. These analyses showed that at early times in infection, capsid protein synthesis and stability were normal, but particle assembly was impaired. Unassembled VP proteins were retained in the cell for several hours, but as the unprocessed material accumulated, capsid protein synthesis progressively diminished, so that at later times relatively few VP molecules were synthesized. Thus in NS2-null infections of mouse cells there is a major primary defect in the folding or assembly processes required for effective capsid production.
Insights
Truncated NS2 protein mutants of minute virus of mice (MVM) cause a host range defect. In mouse cells, impaired capsid assembly, not viral DNA replication, prevents MVM production.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Minute virus of mice (MVM) mutants with truncated NS2 polypeptides show a host range defect, replicating in human but not murine cells.
- This study investigates the molecular basis of this deficiency by creating MVM mutants with termination codons in the NS2 gene.
Purpose of the Study:
- To elucidate the role of the NS2 protein in MVM replication and host range.
- To identify the specific defect in murine cells caused by NS2 truncation.
Main Methods:
- Generation of MVM mutants with translation termination codons in the NS2 gene.
- Analysis of viral DNA replication, gene expression, and capsid protein synthesis/assembly in infected human and murine cells.
- Use of pulse-chase labeling and immunoprecipitation to study capsid protein dynamics.
Main Results:
- In human cells, mutants showed delayed virion release. In murine cells, viral DNA amplification was severely reduced, and single-strand DNA synthesis was undetectable.
- Truncated NS2 products failed to accumulate, mimicking an NS2-null phenotype.
- Capsid protein synthesis and stability were initially normal, but particle assembly was impaired, leading to accumulation of unassembled VP proteins and reduced VP synthesis over time.
Conclusions:
- The primary defect in NS2-null MVM infections of mouse cells is impaired capsid assembly, not viral DNA replication or initiation of infection.
- This assembly defect leads to a failure in progeny virion production, explaining the host range limitation.