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Alsteens, D.

Publications and source records attributed to Alsteens, D..

2 recordsLinked to original sources

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

High-affinity agonist binding to C5aR results from a cooperative two-site binding mechanism

A current challenge in the field of life sciences is to decipher, in their native environment, the functional activation of cell surface receptors upon binding of complex ligands. Lack of suitable nanoscopic methods has hampered our ability to meet this challenge in an experimental manner. Here, we use for the first time the interplay between atomic force microscopy, steered molecular dynamics and functional assays to elucidate the complex ligand-binding mechanism of C5a with the human G protein-coupled C5a receptor (C5aR). We have identified two independent binding sites acting in concert where the N-terminal C5aR serves as kinetic trap and the transmembrane domain as functional site. Our results corroborate the two-site binding model and clearly identify a cooperative effect between two binding sites within the C5aR. We anticipate that our methodology could be used for development and design of new therapeutic agents to negatively modulate C5aR activity.

biochemistry