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.

Nature
|April 17, 2012
PubMed

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.