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The Reovirus σ1 Attachment Protein Influences the Stability of Its Entry Intermediate
Maximiliano L Garcia1, Pranav Danthi1
1Department of Biology, Indiana University, Bloomington, Indiana, USA.
Abstract:
Structural metastability of viral capsids is pivotal for viruses to survive in harsh environments and to undergo timely conformational changes required for cell entry. Mammalian orthoreovirus (reovirus) is a model to study capsid metastability. Following initial disassembly of the reovirus particle mediated by proteases, a metastable intermediate called the infectious subvirion particle (ISVP) is generated. Using a σ1 monoreassortant virus, we recently showed that σ1 properties affect its encapsidation on particles and the metastability of ISVPs. How metastability is impacted by σ1 and whether the lower encapsidation level of σ1 is connected to this property is unknown. To define a correlation between encapsidation of σ1 and ISVP stability, we generated mutant viruses with single amino acid polymorphisms in σ1 or those that contain chimeric σ1 molecules composed of σ1 portions from type 1 and type 3 reovirus strains. We found that under most conditions where σ1 encapsidation on the particle was lower, ISVPs displayed lower stability. Characterization of mutant viruses selected for enhanced stability via a forward genetic approach also revealed that in some cases, σ1 properties influence stability without influencing σ1 encapsidation. These data indicate that σ1 can also influence ISVP stability independent of its level of incorporation. Together, our work reveals an underappreciated effect of the σ1 attachment protein on the properties of the reovirus capsid. IMPORTANCE Reovirus particles are comprised of eight proteins. Among them, the reovirus σ1 protein functions engages cellular receptors. σ1 also influences the stability of an entry intermediate called ISVP. Here, we sought to define the basis of the link between σ1 properties and stability of ISVPs. Using variety of mutant strains, we determined that when virus preparations contain particles with a high amount of encapsidated σ1, ISVP stability is higher. Additionally, we identified portions of σ1 that impact its encapsidation and consequently the stability of ISVPs. We also determined that in some cases, σ1 properties alter stability of ISVPs without affecting encapsidation. This work highlights that proteins of these complex particles are arranged in an intricate, interconnected manner such that changing the properties of these proteins has a profound impact on the remainder of the particle.
Insights
Viral capsid metastability is key for virus survival and cell entry. Reovirus σ1 protein influences infectious subvirion particle (ISVP) stability, with higher σ1 incorporation correlating to greater ISVP stability, though some effects are independent of encapsidation levels.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Viral capsid metastability is crucial for viral survival in harsh environments and for conformational changes during cell entry.
- Mammalian orthoreovirus (reovirus) serves as a model system for studying capsid metastability.
- Protease-mediated disassembly of reovirus generates a metastable intermediate, the infectious subvirion particle (ISVP).
Purpose of the Study:
- To investigate the impact of the reovirus σ1 protein on the metastability of ISVPs.
- To determine the correlation between σ1 encapsidation levels and ISVP stability.
- To identify specific regions or properties of σ1 that influence ISVP stability.
Main Methods:
- Generation of mutant reovirus strains with single amino acid polymorphisms in σ1.
- Construction of chimeric σ1 molecules from different reovirus strains (type 1 and type 3).
- Analysis of σ1 encapsidation levels and ISVP stability in generated mutant viruses.
- Forward genetic selection for enhanced ISVP stability to identify key σ1 properties.
Main Results:
- Lower levels of σ1 encapsidation generally correlated with reduced ISVP stability.
- Specific mutations and chimeric constructs in σ1 affected both encapsidation and ISVP stability.
- In some instances, σ1 properties influenced ISVP stability independently of its encapsidation level.
Conclusions:
- The σ1 attachment protein significantly impacts the stability of the reovirus capsid and its metastable ISVP intermediate.
- Both the level of σ1 incorporation and its intrinsic properties contribute to ISVP stability.
- These findings highlight the intricate interplay between viral proteins and capsid properties, influencing viral infectivity.
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