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Updated: Jun 22, 2026

Isolation of Labile Multi-protein Complexes by in vivo Controlled Cellular Cross-Linking and Immuno-magnetic Affinity Chromatography
Published on: March 10, 2010
Structure of reovirus sigma1 in complex with its receptor junctional adhesion molecule-A
Eva Kirchner1, Kristen M Guglielmi, Holger M Strauss
1Interfaculty Institute for Biochemistry, University of Tuebingen, Tuebingen, Germany.
Abstract:
Viral attachment to specific host receptors is the first step in viral infection and serves an essential function in the selection of target cells. Mammalian reoviruses are highly useful experimental models for studies of viral pathogenesis and show promise as vectors for oncolytics and vaccines. Reoviruses engage cells by binding to carbohydrates and the immunoglobulin superfamily member, junctional adhesion molecule-A (JAM-A). JAM-A exists at the cell surface as a homodimer formed by extensive contacts between its N-terminal immunoglobulin-like domains. We report the crystal structure of reovirus attachment protein sigma1 in complex with a soluble form of JAM-A. The sigma1 protein disrupts the JAM-A dimer, engaging a single JAM-A molecule via virtually the same interface that is used for JAM-A homodimerization. Thus, reovirus takes advantage of the adhesive nature of an immunoglobulin-superfamily receptor by usurping the ligand-binding site of this molecule to attach to the cell surface. The dissociation constant (K(D)) of the interaction between sigma1 and JAM-A is 1,000-fold lower than that of the homophilic interaction between JAM-A molecules, indicating that JAM-A strongly prefers sigma1 as a ligand. Analysis of reovirus mutants engineered by plasmid-based reverse genetics revealed residues in sigma1 required for binding to JAM-A and infectivity of cultured cells. These studies define biophysical mechanisms of reovirus cell attachment and provide a platform for manipulating reovirus tropism to enhance vector targeting.
Insights
Reovirus uses its sigma1 protein to bind junctional adhesion molecule-A (JAM-A), disrupting JAM-A
Area of Science:
- Virology
- Structural Biology
- Molecular Interactions
Background:
- Viral attachment to host receptors dictates cell tropism and infection pathways.
- Mammalian reoviruses are valuable models for pathogenesis and potential vaccine/oncolytic vectors.
- Reoviruses bind cells via carbohydrates and junctional adhesion molecule-A (JAM-A).
Purpose of the Study:
- To elucidate the structural and biophysical mechanisms of reovirus attachment to JAM-A.
- To understand how reovirus usurps JAM-A for cell entry.
- To identify key reovirus residues for JAM-A binding and infectivity.
Main Methods:
- Crystal structure determination of reovirus sigma1 protein bound to soluble JAM-A.
- Biophysical analysis of sigma1-JAM-A interaction affinity (K(D)).
- Reverse genetics to engineer reovirus mutants and assess infectivity.
Main Results:
- The crystal structure reveals sigma1 binding to JAM-A at the homodimerization interface, disrupting the dimer.
- Reovirus sigma1 exhibits a 1,000-fold higher affinity for JAM-A than JAM-A's homophilic interaction.
- Specific sigma1 residues essential for JAM-A binding and cell infectivity were identified.
Conclusions:
- Reovirus exploits the JAM-A binding site to attach to host cells, demonstrating a novel viral entry mechanism.
- The high affinity of sigma1 for JAM-A highlights a strong preference for this interaction.
- Understanding these interactions provides a basis for engineering reovirus tropism for therapeutic applications.
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