1887

Abstract

Coxsackievirus B3 strain 28 (CVB3/28) is less stable at 37 °C than eight other CVB3 strains with which it has been compared, including four in this study. In a variant CVB3/28 population selected for increased stability at 37 °C, the capsid proteins of the stable variant differed from the parental CVB3/28 by two mutations in Vp1 and one mutation in Vp3, each of which resulted in altered protein sequences. Each of the amino acid changes was individually associated with a more stable virus. Competition between CVB3/28 and a more stable derivative of the strain showed that propagation of the less stable virus was favoured in receptor-rich HeLa cells.

Erratum

An erratum has been published for this content:
Corrigendum: Three capsid amino acids notably influence coxsackie B3 virus stability
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2016-01-01
2024-04-25
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References

  1. Altschul S. F., Wootton J. C., Gertz E. M., Agarwala R., Morgulis A., Schäffer A. A., Yu Y. K. 2005; Protein database searches using compositionally adjusted substitution matrices. FEBS J 272:5101–5109 [View Article][PubMed]
    [Google Scholar]
  2. Carson S. D., Pirruccello S. J. 2013; HeLa cell heterogeneity and coxsackievirus B3 cytopathic effect: implications for inter-laboratory reproducibility of results. J Med Virol 85:677–683 [View Article][PubMed]
    [Google Scholar]
  3. Carson S. D., Kim K. S., Pirruccello S. J., Tracy S., Chapman N. M. 2007; Endogenous low-level expression of the coxsackievirus and adenovirus receptor enables coxsackievirus B3 infection of RD cells. J Gen Virol 88:3031–3038 [View Article][PubMed]
    [Google Scholar]
  4. Carson S. D., Chapman N. M., Hafenstein S., Tracy S. 2011; Variations of coxsackievirus B3 capsid primary structure, ligands, and stability are selected for in a coxsackievirus and adenovirus receptor-limited environment. J Virol 85:3306–3314 [View Article][PubMed]
    [Google Scholar]
  5. Cunningham K. A., Chapman N. M., Carson S. D. 2003; Caspase-3 activation and ERK phosphorylation during CVB3 infection of cells: influence of the coxsackievirus and adenovirus receptor and engineered variants. Virus Res 92:179–186 [View Article][PubMed]
    [Google Scholar]
  6. de Verdugo U. R., Selinka H.-C., Huber M., Kramer B., Kellermann J., Hofschneider P. H., Kandolf R. 1995; Characterization of a 100-kilodalton binding protein for the six serotypes of coxsackie B viruses. J Virol 69:6751–6757[PubMed]
    [Google Scholar]
  7. Groarke J. M., Pevear D. C. 1999; Attenuated virulence of pleconaril-resistant coxsackievirus B3 variants. J Infect Dis 179:1538–1541 [View Article][PubMed]
    [Google Scholar]
  8. Higuchi R., Krummel B., Saiki R. K. 1988; A general method of in vitro preparation and specific mutagenesis of DNA fragments: study of protein and DNA interactions. Nucleic Acids Res 16:7351–7367 [View Article][PubMed]
    [Google Scholar]
  9. Lewis J. K., Bothner B., Smith T. J., Siuzdak G. 1998; Antiviral agent blocks breathing of the common cold virus. Proc Natl Acad Sci U S A 95:6774–6778 [View Article][PubMed]
    [Google Scholar]
  10. Li Q., Yafal A. G., Lee Y. M., Hogle J., Chow M. 1994; Poliovirus neutralization by antibodies to internal epitopes of VP4 and VP1 results from reversible exposure of these sequences at physiological temperature. J Virol 68:3965–3970[PubMed]
    [Google Scholar]
  11. Liu Y., Sheng J., Fokine A., Meng G., Shin W. H., Long F., Kuhn R. J., Kihara D., Rossmann M. G. 2015; Structure and inhibition of EV-D68, a virus that causes respiratory illness in children. Science 347:71–74 [View Article][PubMed]
    [Google Scholar]
  12. McDermott B. M. Jr, Rux A. H., Eisenberg R. J., Cohen G. H., Racaniello V. R. 2000; Two distinct binding affinities of poliovirus for its cellular receptor. J Biol Chem 275:23089–23096 [View Article][PubMed]
    [Google Scholar]
  13. Muckelbauer J. K., Kremer M., Minor I., Tong L., Zlotnick A., Johnson J. E., Rossmann M. G. 1995; Structure determination of coxsackievirus B3 to 3.5 Å resolution. Acta Crystallogr D Biol Crystallogr 51:871–887 [View Article][PubMed]
    [Google Scholar]
  14. Organtini L. J., Makhov A. M., Conway J. F., Hafenstein S., Carson S. D. 2014; Kinetic and structural analysis of coxsackievirus B3 receptor interactions and formation of the A-particle. J Virol 88:5755–5765 [View Article][PubMed]
    [Google Scholar]
  15. Reagan K. J., Goldberg B., Crowell R. L. 1984; Altered receptor specificity of coxsackievirus B3 after growth in rhabdomyosarcoma cells. J Virol 49:635–640[PubMed]
    [Google Scholar]
  16. Reisdorph N., Thomas J. J., Katpally U., Chase E., Harris K., Siuzdak G., Smith T. J. 2003; Human rhinovirus capsid dynamics is controlled by canyon flexibility. Virology 314:34–44 [View Article][PubMed]
    [Google Scholar]
  17. Roivainen M., Piirainen L., Rysä T., Närvänen A., Hovi T. 1993; An immunodominant N-terminal region of VP1 protein of poliovirion that is buried in crystal structure can be exposed in solution. Virology 195:762–765 [View Article][PubMed]
    [Google Scholar]
  18. Schmidtke M., Hammerschmidt E., Schüler S., Zell R., Birch-Hirschfeld E., Makarov V. A., Riabova O. B., Wutzler P. 2005; Susceptibility of coxsackievirus B3 laboratory strains and clinical isolates to the capsid function inhibitor pleconaril: antiviral studies with virus chimeras demonstrate the crucial role of amino acid 1092 in treatment. J Antimicrob Chemother 56:648–656 [View Article][PubMed]
    [Google Scholar]
  19. Strauss M., Filman D. J., Belnap D. M., Cheng N., Noel R. T., Hogle J. M. 2015; Nectin-like interactions between poliovirus and its receptor trigger conformational changes associated with cell entry. J Virol 89:4143–4157 [View Article][PubMed]
    [Google Scholar]
  20. Tracy S., Drescher K. M., Chapman N. M., Kim K. S., Carson S. D., Pirruccello S., Lane P. H., Romero J. R., Leser J. S. 2002; Toward testing the hypothesis that group B coxsackieviruses (CVB) trigger insulin-dependent diabetes: inoculating nonobese diabetic mice with CVB markedly lowers diabetes incidence. J Virol 76:12097–12111 [View Article][PubMed]
    [Google Scholar]
  21. Tsang S. K., Danthi P., Chow M., Hogle J. M. 2000; Stabilization of poliovirus by capsid-binding antiviral drugs is due to entropic effects. J Mol Biol 296:335–340 [View Article][PubMed]
    [Google Scholar]
  22. Tu Z., Chapman N. M., Hufnagel G., Tracy S., Romero J. R., Barry W. H., Zhao L., Currey K., Shapiro B. 1995; The cardiovirulent phenotype of coxsackievirus B3 is determined at a single site in the genomic 5′ nontranslated region. J Virol 69:4607–4618[PubMed]
    [Google Scholar]
  23. van Vlijmen H. W., Karplus M. 2005; Normal mode calculations of icosahedral viruses with full dihedral flexibility by use of molecular symmetry. J Mol Biol 350:528–542 [View Article][PubMed]
    [Google Scholar]
  24. Zautner A. E., Körner U., Henke A., Badorff C., Schmidtke M. 2003; Heparan sulfates and coxsackievirus-adenovirus receptor: each one mediates coxsackievirus B3 PD infection. J Virol 77:10071–10077 [View Article][PubMed]
    [Google Scholar]
  25. Zautner A. E., Jahn B., Hammerschmidt E., Wutzler P., Schmidtke M. 2006; N- and 6-O-sulfated heparan sulfates mediate internalization of coxsackievirus B3 variant PD into CHO-K1 cells. J Virol 80:6629–6636 [View Article][PubMed]
    [Google Scholar]
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