ArticlePLoS pathogens2015
Trichodysplasia spinulosa-Associated Polyomavirus Uses a Displaced Binding Site on VP1 to Engage Sialylated Glycolipids.
Article in PLoS pathogens, 2015. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 14 papers.
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Who cites it
14 citing papers in PubMed, 20 citations in OpenAlex.
- Carbohydrates: Binding Sites and Potential Drug Targets for Neural-Affecting Pathogens.Advances in neurobiology · 2023Article
- Structural Insight into Non-Enveloped Virus Binding to Glycosaminoglycan Receptors: A Review.Viruses · 2021Review
- The structure of SeviL, a GM1b/asialo-GM1 binding R-type lectin from the mussel Mytilisepta virgata.Scientific reports · 2020Article
- Review
- Structural Analysis of Merkel Cell Polyomavirus (MCPyV) Viral Capsid Protein 1 (VP1) in HIV-1 Infected Individuals.International journal of molecular sciences · 2020Article
- Structure of Merkel Cell Polyomavirus Capsid and Interaction with Its Glycosaminoglycan Attachment Receptor.Journal of virology · 2020Article
- Agglutination of Human Polyomaviruses by Using a Tetravalent Glycocluster as a Cross-Linker.ACS omega · 2020Article
- Structural Basis and Evolution of Glycan Receptor Specificities within the Polyomavirus Family.mBio · 2020Article
- The Symmetry of Viral Sialic Acid Binding Sites-Implications for Antiviral Strategies.Viruses · 2019Review
- Multiscale Simulations of Biological Membranes: The Challenge To Understand Biological Phenomena in a Living Substance.Chemical reviews · 2019Article
- Spin ballet for sweet encounters: saturation-transfer difference NMR and X-ray crystallography complement each other in the elucidation of protein-glycan interactions.Acta crystallographica. Section F, Structural biology communications · 2018Review
- Substrate-bound outward-open structure of a NaNature communications · 2018Article
- Review
- Glycosphingolipid-Protein Interaction in Signal Transduction.International journal of molecular sciences · 2016Review
Corrections and comments
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Authors and funding
7 authors at 5 institutions in 3 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Trichodysplasia spinulosa-associated Polyomavirus (TSPyV) was isolated from a patient suffering from trichodysplasia spinulosa, a skin disease that can appear in severely immunocompromised patients. While TSPyV is one of the five members of the polyomavirus family that are directly linked to a human disease, details about molecular recognition events, the viral entry pathway, and intracellular trafficking events during TSPyV infection remain unknown. Here we have used a structure-function approach to shed light on the first steps of TSPyV infection. We established by cell binding and pseudovirus infection studies that TSPyV interacts with sialic acids during attachment and/or entry. Subsequently, we solved high-resolution X-ray structures of the major capsid protein VP1 of TSPyV in complex with three different glycans, the branched GM1 glycan, and the linear trisaccharides α2,3- and α2,6-sialyllactose. The terminal sialic acid of all three glycans is engaged in a unique binding site on TSPyV VP1, which is positioned about 18 Å from established sialic acid binding sites of other polyomaviruses. Structure-based mutagenesis of sialic acid-binding residues leads to reduction in cell attachment and pseudovirus infection, demonstrating the physiological relevance of the TSPyV VP1-glycan interaction. Furthermore, treatments of cells with inhibitors of N-, O-linked glycosylation, and glycosphingolipid synthesis suggest that glycolipids play an important role during TSPyV infection. Our findings elucidate the first molecular recognition events of cellular infection with TSPyV and demonstrate that receptor recognition by polyomaviruses is highly variable not only in interactions with sialic acid itself, but also in the location of the binding site.
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