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Published on: August 9, 2013
Nonstructural protein σ1s mediates reovirus-induced cell cycle arrest and apoptosis
Karl W Boehme1, Katharina Hammer, William C Tollefson
1Department of Microbiology and Immunology.
Abstract:
Reovirus nonstructural protein σ1s is implicated in cell cycle arrest at the G2/M boundary and induction of apoptosis. However, the contribution of σ1s to these effects in an otherwise isogenic viral background has not been defined. To evaluate the role of σ1s in cell cycle arrest and apoptosis, we used reverse genetics to generate a σ1s-null reovirus. Following infection with wild-type virus, we observed an increase in the percentage of cells in G2/M, whereas the proportion of cells in G2/M following infection with the σ1s-null mutant was unaffected. Similarly, we found that the wild-type virus induced substantially greater levels of apoptosis than the σ1s-null mutant. These data indicate that σ1s is required for both reovirus-induced cell cycle arrest and apoptosis. To define sequences in σ1s that mediate these effects, we engineered viruses encoding C-terminal σ1s truncations by introducing stop codons in the σ1s open reading frame. We also generated viruses in which charged residues near the σ1s amino terminus were replaced individually or as a cluster with nonpolar residues. Analysis of these mutants revealed that amino acids 1 to 59 and the amino-terminal basic cluster are required for induction of both cell cycle arrest and apoptosis. Remarkably, viruses that fail to induce cell cycle arrest and apoptosis also are attenuated in vivo. Thus, identical sequences in σ1s are required for reovirus-induced cell cycle arrest, apoptosis, and pathogenesis. Collectively, these findings provide evidence that the σ1s-mediated properties are genetically linked and suggest that these effects are mechanistically related.
Insights
Reovirus protein σ1s is essential for inducing cell cycle arrest and apoptosis. Specific sequences within σ1s are required for these effects and viral pathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Reovirus nonstructural protein σ1s is linked to cell cycle arrest and apoptosis.
- The precise role of σ1s in these processes within an isogenic viral context was unclear.
Purpose of the Study:
- To investigate the necessity of σ1s for reovirus-induced cell cycle arrest and apoptosis.
- To identify specific regions within σ1s responsible for mediating these cellular responses and their impact on viral pathogenesis.
Main Methods:
- Generation of a σ1s-null reovirus mutant using reverse genetics.
- Engineering of viruses with C-terminal σ1s truncations and mutations in N-terminal charged residues.
- Analysis of cell cycle progression (G2/M phase) and apoptosis levels in infected cells.
- In vivo attenuation studies of generated viral mutants.
Main Results:
- Wild-type reovirus infection increased G2/M phase cells and apoptosis, while the σ1s-null mutant did not.
- Amino acids 1-59 and the N-terminal basic cluster of σ1s were identified as crucial for inducing both cell cycle arrest and apoptosis.
- Viruses lacking the ability to induce cell cycle arrest and apoptosis exhibited attenuated in vivo virulence.
Conclusions:
- Reovirus protein σ1s is indispensable for inducing G2/M cell cycle arrest and apoptosis.
- Specific N-terminal sequences of σ1s are genetically linked and mechanistically related to cell cycle arrest, apoptosis, and viral pathogenesis.
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