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Published on: February 11, 2019
Components of the Reovirus Capsid Differentially Contribute to Stability
Anthony J Snyder1, Joseph Che-Yen Wang2, Pranav Danthi3
1Department of Biology, Indiana University, Bloomington, Indiana, USA.
Abstract:
The mammalian orthoreovirus (reovirus) outer capsid is composed of 200 μ1-σ3 heterohexamers and a maximum of 12 σ1 trimers. During cell entry, σ3 is degraded by luminal or intracellular proteases to generate the infectious subviral particle (ISVP). When ISVP formation is prevented, reovirus fails to establish a productive infection, suggesting proteolytic priming is required for entry. ISVPs are then converted to ISVP*s, which is accompanied by μ1 rearrangements. The μ1 and σ3 proteins confer resistance to inactivating agents; however, neither the impact on capsid properties nor the mechanism (or basis) of inactivation is fully understood. Here, we utilized T1L/T3D M2 and T3D/T1L S4 to investigate the determinants of reovirus stability. Both reassortants encode mismatched subunits. When μ1-σ3 were derived from different strains, virions resembled wild-type particles in structure and protease sensitivity. T1L/T3D M2 and T3D/T1L S4 ISVPs were less thermostable than wild-type ISVPs. In contrast, virions were equally susceptible to heating. Virion associated μ1 adopted an ISVP*-like conformation concurrent with inactivation; σ3 preserves infectivity by preventing μ1 rearrangements. Moreover, thermostability was enhanced by a hyperstable variant of μ1. Unlike the outer capsid, the inner capsid (core) was highly resistant to elevated temperatures. The dual layered architecture allowed for differential sensitivity to inactivating agents.IMPORTANCE Nonenveloped and enveloped viruses are exposed to the environment during transmission to a new host. Protein-protein and/or protein-lipid interactions stabilize the particle and protect the viral genome. Mammalian orthoreovirus (reovirus) is composed of two concentric, protein shells. The μ1 and σ3 proteins form the outer capsid; contacts between neighboring subunits are thought to confer resistance to inactivating agents. We further investigated the determinants of reovirus stability. The outer capsid was disrupted concurrent with the loss of infectivity; virion associated μ1 rearranged into an altered conformation. Heat sensitivity was controlled by σ3; however, particle integrity was enhanced by a single μ1 mutation. In contrast, the inner capsid (core) displayed superior resistance to heating. These findings reveal structural components that differentially contribute to reovirus stability.
Insights
Mammalian orthoreovirus stability depends on its outer capsid proteins, μ1 and σ3. Outer capsid disruption and μ1 rearrangement lead to infectivity loss, while the inner capsid remains heat-resistant.
Area of Science:
- Virology
- Structural Biology
- Molecular Biology
Background:
- Mammalian orthoreovirus (reovirus) has a double-layered capsid crucial for stability and infection.
- The outer capsid, composed of μ1-σ3 heterohexamers and σ1 trimers, undergoes proteolysis during cell entry to form infectious subviral particles (ISVPs).
- The exact mechanisms by which outer capsid proteins confer resistance to inactivating agents remain incompletely understood.
Purpose of the Study:
- To investigate the determinants of reovirus stability by examining the roles of μ1 and σ3 proteins.
- To understand how outer capsid protein interactions and rearrangements affect particle stability and infectivity.
- To compare the thermostability of virions, ISVPs, and the inner capsid core.
Main Methods:
- Utilized reassortant reoviruses (T1L/T3D M2 and T3D/T1L S4) with mismatched outer capsid subunits.
- Assessed particle structure, protease sensitivity, and thermostability of virions and ISVPs.
- Analyzed conformational changes of μ1 protein during inactivation.
Main Results:
- Outer capsid disruption correlated with loss of infectivity and μ1 rearrangement into an ISVP*-like conformation.
- σ3 protein primarily controlled heat sensitivity, whereas a single μ1 mutation enhanced particle thermostability.
- The inner capsid (core) demonstrated high resistance to elevated temperatures, unlike the outer capsid.
Conclusions:
- Reovirus stability is modulated by differential contributions of outer and inner capsid components.
- Outer capsid integrity, maintained by σ3 and μ1 interactions, is essential for preventing premature μ1 rearrangement and maintaining infectivity.
- The distinct thermostability of the outer and inner capsids highlights the virus's adaptive structural strategy for survival and transmission.
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