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A Miniaturized Glycan Microarray Assay for Assessing Avidity and Specificity of Influenza A Virus Hemagglutinins
Published on: May 29, 2016
Trisaccharide containing α2,3-linked sialic acid is a receptor for mumps virus
Marie Kubota1, Kaoru Takeuchi2, Shumpei Watanabe1
1Department of Virology, Faculty of Medicine, Kyushu University, Fukuoka 812-8582, Japan.
Abstract:
Mumps virus (MuV) remains an important pathogen worldwide, causing epidemic parotitis, orchitis, meningitis, and encephalitis. Here we show that MuV preferentially uses a trisaccharide containing α2,3-linked sialic acid in unbranched sugar chains as a receptor. Crystal structures of the MuV attachment protein hemagglutinin-neuraminidase (MuV-HN) alone and in complex with the α2,3-sialylated trisaccharide revealed that in addition to the interaction between the MuV-HN active site residues and sialic acid, other residues, including an aromatic residue, stabilize the third sugar of the trisaccharide. The importance of the aromatic residue and the third sugar in the MuV-HN-receptor interaction was confirmed by computational energy calculations, isothermal titration calorimetry studies, and glycan-binding assays. Furthermore, MuV-HN was found to bind more efficiently to unbranched α2,3-sialylated sugar chains compared with branched ones. Importantly, the strategically located aromatic residue is conserved among the HN proteins of sialic acid-using paramyxoviruses, and alanine substitution compromised their ability to support cell-cell fusion. These results suggest that not only the terminal sialic acid but also the adjacent sugar moiety contribute to receptor function for mumps and these paramyxoviruses. The distribution of structurally different sialylated glycans in tissues and organs may explain in part MuV's distinct tropism to glandular tissues and the central nervous system. In the crystal structure, the epitopes for neutralizing antibodies are located around the α-helices of MuV-HN that are not well conserved in amino acid sequences among different genotypes of MuV. This may explain the fact that MuV reinfection sometimes occurs.
Insights
Mumps virus (MuV) uses a specific trisaccharide with α2,3-linked sialic acid for cell entry. This interaction involves not just sialic acid but also adjacent sugars, influencing MuV tropism and antibody evasion.
Area of Science:
- Virology
- Structural Biology
- Glycobiology
Background:
- Mumps virus (MuV) is a global pathogen causing significant illness, including parotitis, orchitis, meningitis, and encephalitis.
- Understanding MuV's host cell entry mechanism is crucial for developing effective antiviral strategies and vaccines.
Purpose of the Study:
- To elucidate the specific molecular interactions between the Mumps virus hemagglutinin-neuraminidase (MuV-HN) protein and its cellular receptor.
- To investigate the role of sialic acid linkage and sugar chain structure in MuV attachment and infection.
Main Methods:
- Determined crystal structures of MuV-HN alone and in complex with α2,3-sialylated trisaccharides.
- Employed computational energy calculations, isothermal titration calorimetry, and glycan-binding assays to validate interactions.
- Analyzed the conservation of key residues in HN proteins of related paramyxoviruses.
Main Results:
- MuV preferentially binds to unbranched trisaccharides containing α2,3-linked sialic acid.
- MuV-HN interaction involves both sialic acid and an adjacent sugar moiety, stabilized by specific residues, including a conserved aromatic residue.
- Binding efficiency is higher for unbranched versus branched sugar chains.
Conclusions:
- The receptor recognition for mumps and related paramyxoviruses extends beyond terminal sialic acid to include adjacent sugar structures.
- A conserved aromatic residue in MuV-HN is critical for receptor binding and cell-cell fusion, suggesting a conserved mechanism across sialic acid-using paramyxoviruses.
- Structural features of MuV-HN and its receptor interactions may explain MuV's tissue tropism and the occurrence of reinfections due to antibody evasion.
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