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The VP5 Domain of VP4 Can Mediate Attachment of Rotaviruses to Cells

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Journal J Virol
Date 2000 Jan 7
PMID 10623720
Citations 27
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Abstract

Some animal rotaviruses require the presence of sialic acid (SA) on the cell surface to infect the cell. We have isolated variants of rhesus rotavirus (RRV) whose infectivity no longer depends on SA. Both the SA-dependent and -independent interactions of these viruses with the cell are mediated by the virus spike protein VP4, which is cleaved by trypsin into two domains, VP5 and VP8. In this work we have compared the binding characteristics of wild-type RRV and its variant nar3 to MA104 cells. In a direct nonradioactive binding assay, both viruses bound to the cells in a saturable and specific manner. When neutralizing monoclonal antibodies directed to both the VP8 and VP5 domains of VP4 were used to block virus binding, antibodies to VP8 blocked the cell attachment of wild-type RRV but not that of the variant nar3. Conversely, an antibody to VP5 inhibited the binding of nar3 but not that of RRV. These results suggest that while RRV binds to the cell through VP8, the variant does so through the VP5 domain of VP4. This observation was further sustained by the fact that recombinant VP8 and VP5 proteins, produced in bacteria as fusion products with glutathione S-transferase, were found to bind to MA104 cells in a specific and saturable manner and, when preincubated with the cell, were capable of inhibiting the binding of wild-type and variant viruses, respectively. In addition, the VP5 and VP8 recombinant proteins inhibited the infectivity of nar3 and RRV, respectively, confirming the results obtained in the binding assays. Interestingly, when the infectivity assay was performed on neuraminidase-treated cells, the VP5 fusion protein was also found to inhibit the infectivity of RRV, suggesting that RRV could bind to the cell through two sequential steps mediated by the interaction of VP8 and VP5 with SA-containing and SA-independent cell surface receptors, respectively.

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References
1.
Mackow E, Shaw R, Matsui S, Vo P, Dang M, Greenberg H . The rhesus rotavirus gene encoding protein VP3: location of amino acids involved in homologous and heterologous rotavirus neutralization and identification of a putative fusion region. Proc Natl Acad Sci U S A. 1988; 85(3):645-9. PMC: 279611. DOI: 10.1073/pnas.85.3.645. View

2.
Lopez S, Arias C, Bell J, Strauss J, Espejo R . Primary structure of the cleavage site associated with trypsin enhancement of rotavirus SA11 infectivity. Virology. 1985; 144(1):11-9. DOI: 10.1016/0042-6822(85)90300-9. View

3.
Keljo D, Smith A . Characterization of binding of simian rotavirus SA-11 to cultured epithelial cells. J Pediatr Gastroenterol Nutr. 1988; 7(2):249-56. DOI: 10.1097/00005176-198803000-00015. View

4.
Fukuhara N, Yoshie O, Kitaoka S, Konno T . Role of VP3 in human rotavirus internalization after target cell attachment via VP7. J Virol. 1988; 62(7):2209-18. PMC: 253354. DOI: 10.1128/JVI.62.7.2209-2218.1988. View

5.
Fukudome K, Yoshie O, Konno T . Comparison of human, simian, and bovine rotaviruses for requirement of sialic acid in hemagglutination and cell adsorption. Virology. 1989; 172(1):196-205. DOI: 10.1016/0042-6822(89)90121-9. View