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dos Santos Natividade, R.

Publications and source records attributed to dos Santos Natividade, R..

2 recordsLinked to original sources

The human neuronal receptor NgR1 bridges reovirus capsid proteins to initiate infection

Human Nogo-66 receptor 1 (NgR1) is a receptor for mammalian orthoreoviruses (reoviruses), but the mechanism of virus-receptor engagement is unknown. NgR1 binds a variety of structurally dissimilar ligands in the adult central nervous system (CNS) to inhibit axon outgrowth. Disruption of ligand binding to NgR1 and subsequent signaling can improve neuron regrowth, making NgR1 an important therapeutic target for diverse conditions such as spinal crush injuries and Alzheimer disease. To elucidate how NgR1 mediates cell binding and entry of reovirus, we defined the affinity of interaction between virus and receptor, determined the structure of the virus-receptor complex, and identified residues in the receptor required for virus binding and infection. These studies revealed that NgR1 sequences in a central concave region of the molecule establish a bridge between two copies of the viral capsid protein, {sigma}3. This unusual binding interface produces high-avidity interactions between virus and receptor and likely primes early entry steps. NgR1 sequences engaged by reovirus also are required for NgR1 binding to ligands expressed by neurons and oligodendrocytes. These studies redefine models of reovirus cell-attachment and highlight the evolution of viruses to engage multiple receptors using distinct capsid components.

microbiology

Reovirus σ1 conformational flexibility modulates the efficiency of host cell attachment

Reovirus attachment protein {sigma}1 is a trimeric molecule containing tail, body, and head domains. During infection, {sigma}1 engages sialylated glycans and junctional adhesion molecule-A (JAM-A), triggering uptake into the endocytic compartment, where virions are proteolytically converted to infectious subvirion particles (ISVPs). Further disassembly allows {sigma}1 release and escape of transcriptionally active reovirus cores into the cytosol. Electron microscopy has revealed a distinct conformational change in {sigma}1 from a compact form on virions to an extended form on ISVPs. To determine the importance of {sigma}1 conformational mobility, we used reverse genetics to introduce cysteine mutations that can crosslink {sigma}1 by establishing disulfide bonds between structurally adjacent sites in the tail, body, and head domains. We detected phenotypic differences among the engineered viruses. A mutant with a cysteine pair in the head domain replicates with enhanced kinetics, forms large plaques, and displays increased avidity for JAM-A relative to the parental virus, mimicking properties of ISVPs. However, unlike ISVPs, particles containing cysteine mutations that crosslink the head domain uncoat and transcribe viral positive-sense RNA with kinetics similar to the parental virus and are sensitive to ammonium chloride. Together, these data suggest that {sigma}1 conformational flexibility modulates the efficiency of reovirus host cell attachment. IMPORTANCENonenveloped virus entry is an incompletely understood process. For reovirus, the functional significance of conformational rearrangements in the attachment protein, {sigma}1, that occur during entry and particle uncoating are unknown. We engineered and characterized reoviruses containing cysteine mutations that crosslink {sigma}1 monomers in non-reducing conditions. We found that the introduction of a cysteine pair in the receptor-binding domain of {sigma}1 yielded a virus that replicates with faster kinetics than the parental virus and forms larger plaques. Using functional assays, we found that crosslinking the {sigma}1 receptor-binding domain modulates reovirus attachment but not uncoating or transcription. These data suggest that {sigma}1 conformational rearrangements mediate the efficiency of reovirus host cell attachment.

microbiology