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Quantifying Human Norovirus Virus-like Particles Binding to Commensal Bacteria Using Flow Cytometry
Published on: April 29, 2020
Murine noroviruses bind glycolipid and glycoprotein attachment receptors in a strain-dependent manner
Stefan Taube1, Jeffrey W Perry, Eoghan McGreevy
1Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, Michigan, USA.
Abstract:
Human norovirus infections are the most common cause of acute nonbacterial gastroenteritis in humans worldwide, and glycan binding plays an important role in the susceptibility to these infections. However, due to the lack of an efficient cell culture system or small animal model for human noroviruses, little is known about the biological role of glycan binding during infection. Murine noroviruses (MNV) are also enteric viruses that bind to cell surface glycans, but in contrast to their human counterparts, they can be grown in tissue culture and a small animal host. In this study, we determined glycan-binding specificities of the MNV strains MNV-1 and CR3 in vitro, identified molecular determinants of glycan binding, and analyzed infection in vivo. We showed that unlike MNV-1, CR3 binding to murine macrophages was resistant to neuraminidase treatment and glycosphingolipid depletion. Both strains depended on N-linked glycoproteins for binding, while only MNV-1 attachment to macrophages was sensitive to O-linked glycoprotein depletion. In vivo, CR3 showed differences in tissue tropism compared to MNV-1 by replicating in the large intestine. Mapping of a glycan-binding site in the MNV-1 capsid by reverse genetics identified a region topologically similar to the histo-blood group antigen (HBGA)-binding sites of the human norovirus strain VA387. The recombinant virus showed distinct changes in tissue tropism compared to wild-type virus. Taken together, our data demonstrate that MNV strains evolved multiple strategies to bind different glycan receptors on the surface of murine macrophages and that glycan binding contributes to tissue tropism in vivo.
Insights
Murine noroviruses (MNV) use diverse glycan-binding strategies to infect host cells. Understanding these viral-glycan interactions is key to deciphering norovirus tropism and pathogenesis.
Area of Science:
- Virology
- Glycobiology
- Immunology
Background:
- Human noroviruses cause widespread gastroenteritis, with glycan binding influencing infection susceptibility.
- Lack of models for human noroviruses limits understanding of glycan binding's role in infection.
- Murine noroviruses (MNV) offer a tractable model for studying norovirus-glycan interactions due to available cell culture and animal models.
Purpose of the Study:
- To determine glycan-binding specificities of MNV strains MNV-1 and CR3.
- To identify molecular determinants of MNV glycan binding.
- To analyze the in vivo role of glycan binding in MNV infection and tissue tropism.
Main Methods:
- In vitro analysis of glycan-binding specificities for MNV-1 and CR3.
- Treatment of murine macrophages with neuraminidase and O-linked glycoprotein depletors.
- Reverse genetics to map glycan-binding sites in the MNV-1 capsid.
Main Results:
- MNV-1 and CR3 exhibit distinct glycan-binding profiles on murine macrophages.
- CR3 binding is resistant to neuraminidase and glycosphingolipid depletion, unlike MNV-1.
- Both strains utilize N-linked glycoproteins; MNV-1 attachment is also sensitive to O-linked glycoprotein depletion.
- MNV CR3 demonstrates unique tissue tropism, replicating in the large intestine.
- A mapped glycan-binding site in MNV-1 resembles human norovirus HBGA-binding sites, altering tissue tropism in recombinant viruses.
Conclusions:
- MNV strains employ varied strategies to bind different glycan receptors on murine macrophages.
- Glycan binding significantly contributes to the tissue tropism of MNV in vivo.
- These findings provide insights into norovirus host-pathogen interactions and viral evolution.
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