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Updated: Aug 3, 2026

Highly Sensitive Assay for Measurement of Arenavirus-cell Attachment
Published on: March 2, 2016
Attachment and cell entry of mammalian orthoreovirus
K M Guglielmi1, E M Johnson, T Stehle
1Department of Microbiology and Immunology, Vanderbilt University School of Medicine, Nashville, TN 37232, USA.
Abstract:
Mammalian orthoreoviruses (reoviruses) serve as a tractable model system for studies of viral pathogenesis. Reoviruses infect virtually all mammals, but cause disease only in the very young. Prototype strains of the three reovirus serotypes differ in pathogenesis following infection of newborn mice. Reoviruses are nonenveloped, icosahedral particles that consist of ten segments of double-stranded RNA encapsidated within two protein shells, the inner core and outer capsid. High-resolution structures of individual components of the reovirus outer capsid and a single viral receptor have been solved and provide insight into the functions of these molecules in viral attachment, entry, and pathogenesis. Attachment of reovirus to target cells is mediated by the reovirus sigma1 protein, a filamentous trimer that projects from the outer capsid. Junctional adhesion molecule-A is a serotype-independent receptor for reovirus, and sialic acid is a coreceptor for serotype 3 strains. After binding to receptors on the cell surface, reovirus is internalized via receptor-mediated endocytosis. Internalization is followed by stepwise disassembly of the viral outer capsid in the endocytic compartment. Uncoating events, which require acidic pH and endocytic proteases, lead to removal of major outer-capsid protein sigma3, resulting in exposure of membrane-penetration mediator micro1 and a conformational change in attachment protein sigma1. After penetration of endosomes by uncoated particles, the transcriptionally active viral core is released into the cytoplasm, where replication proceeds. Despite major advances in defining reovirus attachment and entry mechanisms, many questions remain. Ongoing research is aimed at understanding serotype-dependent differences in reovirus tropism, viral cell-entry pathways, the individual and corporate roles of acidic pH and proteases in viral entry, and micro1 function in membrane penetration.
Insights
Mammalian orthoreoviruses (reoviruses) are nonenveloped viruses that infect mammals, causing disease primarily in the young. Their entry into cells involves specific proteins and pathways, with ongoing research exploring tropism and entry mechanisms.
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Mammalian orthoreoviruses (reoviruses) are double-stranded RNA viruses studied for viral pathogenesis.
- Reoviruses infect most mammals but cause disease mainly in neonates, with serotype-dependent pathogenesis.
- Reovirus structure involves an icosahedral capsid with inner core and outer shell, housing ten dsRNA segments.
Purpose of the Study:
- To elucidate the molecular mechanisms of reovirus attachment, entry, and pathogenesis.
- To understand the roles of viral proteins and host cell receptors in reovirus infection.
- To investigate serotype-specific differences in reovirus tropism and cell entry.
Main Methods:
- High-resolution structural analysis of reovirus outer capsid components and viral receptors.
- Biochemical and cell-based assays to study viral attachment and entry pathways.
- In vivo studies using newborn mice to assess reovirus pathogenesis.
Main Results:
- Reovirus attachment is mediated by sigma1 protein interacting with junctional adhesion molecule-A (JAM-A) and sialic acid (serotype 3).
- Viral entry involves receptor-mediated endocytosis, followed by stepwise outer capsid disassembly.
- Uncoating requires acidic pH and proteases, exposing micro1 for membrane penetration and releasing the core for cytoplasmic replication.
Conclusions:
- Reovirus entry is a complex, multi-step process involving specific viral proteins, host receptors, and endosomal conditions.
- Understanding these mechanisms provides insights into viral pathogenesis and potential therapeutic targets.
- Further research is needed to fully clarify serotype-dependent tropism and the precise roles of micro1 and other factors in viral entry.
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