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Published on: October 16, 2018
Cell attachment protein VP8* of a human rotavirus specifically interacts with A-type histo-blood group antigen
Liya Hu1, Sue E Crawford, Rita Czako
1Verna and Marrs McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, Houston, Texas 77030, USA.
Abstract:
As with many other viruses, the initial cell attachment of rotaviruses, which are the major causative agent of infantile gastroenteritis, is mediated by interactions with specific cellular glycans. The distally located VP8* domain of the rotavirus spike protein VP4 (ref. 5) mediates such interactions. The existing paradigm is that 'sialidase-sensitive' animal rotavirus strains bind to glycans with terminal sialic acid (Sia), whereas 'sialidase-insensitive' human rotavirus strains bind to glycans with internal Sia such as GM1 (ref. 3). Although the involvement of Sia in the animal strains is firmly supported by crystallographic studies, it is not yet known how VP8* of human rotaviruses interacts with Sia and whether their cell attachment necessarily involves sialoglycans. Here we show that VP8* of a human rotavirus strain specifically recognizes A-type histo-blood group antigen (HBGA) using a glycan array screen comprised of 511 glycans, and that virus infectivity in HT-29 cells is abrogated by anti-A-type antibodies as well as significantly enhanced in Chinese hamster ovary cells genetically modified to express the A-type HBGA, providing a novel paradigm for initial cell attachment of human rotavirus. HBGAs are genetically determined glycoconjugates present in mucosal secretions, epithelia and on red blood cells, and are recognized as susceptibility and cell attachment factors for gastric pathogens like Helicobacter pylori and noroviruses. Our crystallographic studies show that the A-type HBGA binds to the human rotavirus VP8* at the same location as the Sia in the VP8* of animal rotavirus, and suggest how subtle changes within the same structural framework allow for such receptor switching. These results raise the possibility that host susceptibility to specific human rotavirus strains and pathogenesis are influenced by genetically controlled expression of different HBGAs among the world's population.
Insights
Human rotaviruses, a major cause of infantile gastroenteritis, attach to cells using A-type histo-blood group antigens (HBGAs), not sialic acid. This discovery offers new insights into rotavirus infection and host susceptibility.
Area of Science:
- Virology
- Glycobiology
- Immunology
Background:
- Rotaviruses cause infantile gastroenteritis, with initial cell attachment mediated by spike protein VP4's VP8* domain.
- Current understanding suggests animal rotaviruses bind sialic acid (Sia), while human strains bind internal Sia, but human VP8* interactions remain unclear.
Purpose of the Study:
- To elucidate the specific glycan receptor recognized by the VP8* domain of a human rotavirus strain.
- To investigate the role of this interaction in viral infectivity and pathogenesis.
Main Methods:
- Glycan array screening of 511 glycans to identify VP8* binding targets.
- Infectivity assays using HT-29 cells and genetically modified Chinese hamster ovary (CHO) cells.
- Crystallographic studies of human rotavirus VP8* bound to A-type HBGA.
Main Results:
- Human rotavirus VP8* specifically recognizes A-type histo-blood group antigen (HBGA).
- Anti-A-type antibodies abrogated virus infectivity in HT-29 cells.
- Infectivity was enhanced in CHO cells engineered to express A-type HBGA.
- Crystallography confirmed A-type HBGA binds to the same site as Sia in animal rotavirus VP8*.
Conclusions:
- Human rotaviruses utilize A-type HBGAs for cell attachment, challenging the existing sialic acid paradigm.
- Host susceptibility and pathogenesis may be influenced by genetically determined HBGA expression patterns.
- Structural analysis reveals receptor switching mechanisms within the VP8* protein.

