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An investigation of antigenic drift of neuraminidases of influenza A (H1N1) viruses

Published online by Cambridge University Press:  19 October 2009

P. Luther
Affiliation:
Research Institute for Lung Disease, Berlin-Buch, GDR and National Institute for Biological Standards and Control, Holly Hill, Hampstead, London NW3 6RB
K. Ch. Bergmann
Affiliation:
Research Institute for Lung Disease, Berlin-Buch, GDR and National Institute for Biological Standards and Control, Holly Hill, Hampstead, London NW3 6RB
J. S. Oxford
Affiliation:
Research Institute for Lung Disease, Berlin-Buch, GDR and National Institute for Biological Standards and Control, Holly Hill, Hampstead, London NW3 6RB
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Summary

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A newly developed lectin neuraminidase test (LNT) and a panel of mouse monoclonal and post-infection ferret antibodies have been used to analyse antigenic drift in N1 neuraminidases of influenza A viruses isolated between 1933 and 1957 and also between 1977 and 1980. Significant antigenic differences were detected among the ‘early’ (1933–57) viruses since the NA of viruses isolated one year apart could be distinguished serologically. The NA ofthe ‘re-emerged’ virus A/USSR/92/77 (H1N1) was antigenically related but not identical to influenza A viruses isolated in 1949 (A/Paris/49 (H1N1), A/Geneva/49 (H1N1)) which thus predates the previously observed antigenic similarity of A/USSR/77 with A/FW/50 (H1N1) virus.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1984

References

REFERENCES

Aymard-Henry, M., Coleman, M. I., Dowdle, W. R., Laver, W. G., Schild, G. C. & Webster, R. G. (1973). Influenza virus neuraminidase and neuraminidase-inhibition procedures. Bulletin of the World Health Organisation 48, 199202.Google ScholarPubMed
Bird, G. W. G. (1964). Anti-T in peanuts. Vox Sang 9, 748752.Google ScholarPubMed
Block, J. & Air, G. M. (1982). Sequence variation at the 3' end of the neuraminidase gene from 39 influenza type A viruses. Virology 121, 211229.CrossRefGoogle Scholar
Callow, K. A. & Beare, A. S. (1976). Measurement of antibody to influenza virus neuraminidase by single radial haemolysis in agarose gels. Infection and Immunity 13, 18.CrossRefGoogle ScholarPubMed
Hugentobler, A. L., Schild, G. C. & Oxford, J. S. (1981). Differences in the electrophoretic migration rates of polypeptides and RNA of recent isolates of influenza B viruses. Archives of Virology 69, 197207.CrossRefGoogle ScholarPubMed
Kendal, A. P., Noble, G. R., Skehel, J. J. & Dowdle, W. R. (1978). Antigenic similarity of influenza A (H1N1) viruses from epidemics in 1977–1978 to ‘Scandinavian’ strains isolated in epidemics of 1950–51. Virology 89, 632636.CrossRefGoogle Scholar
Kozlov, J. V., Gorbulev, V. G., Kurmanova, A. G., Bayev, A. A., Shilov, A. A. & Zhdanov, V. M. (1981). On the origin of the H1N1 (A/USSR/90/77) influenza virus. Journal of General Virology 56, 437440.CrossRefGoogle ScholarPubMed
Luther, P., Bergmann, K. Ch., Oxford, J. S. & Schild, G. C. (1982). An investigation of antigenic drift of Influenza Nl and N2 neuraminidase using monoclonal antibodies in the lectin neuraminidase test (LN-test). Abstract of the Eighth International Congress of Infectious Diseases, Stockholm.Google Scholar
Luther, P., Klett, G. E., Weber, S., Pechmann, H. & Bergmann, K. Ch. (1983). The lectin neuraminidase inhibition test: a new method for the detection of antibodies to neuraminidase. Journal of Biological Standardisation 11, 115121.CrossRefGoogle Scholar
Nakajima, K., Desselberoer, U. & Palese, P. (1978). Recent human influenza A (H1N1) viruses are closely related genetically to strains isolated in 1950. Nature 274, 334339.CrossRefGoogle ScholarPubMed
Palese, P. & Schulman, J. L. (1976). Differences in RNA patterns of influenza A viruses. Journal of Virology 17, 876884.CrossRefGoogle ScholarPubMed
Palese, P. & Young, J. F. (1982). Variation of influenza A, B and C viruses. Science 215, 14681474.CrossRefGoogle Scholar
Paniker, C. K. J. (1968). Serological relationships between the neuraminidases of influenza viruses. Journal of General Virology 2, 385394.CrossRefGoogle ScholarPubMed
Schild, G. C., Oxford, J. S., Dowdle, W. R., Coleman, M., Pereira, M. S. & Chakraverty, P. (1974). Antigenic variation in current influenza viruses: evidence for a high frequency of antigenic drift for the Hong Kong virus. Bulletin of the World Health Organisation 51, 111.Google ScholarPubMed
Schild, G. C. & Dowdle, W. R. (1975). Influenza virus characterisation and diagnostic serology. In The Influenza Viruses and Influenza (ed. Kilbourne, E. D.), pp. 315372. New York: Academic Press.Google ScholarPubMed
Scholtissek, C., Von Hoyningen, V. & Rott, R. (1978). Genetic relatedness between the new 1977 epidemic strains (H1N1) of influenza and human influenza strains isolated between 1947 and 1957 (H1N1). Virology 89, 613617.CrossRefGoogle ScholarPubMed
Skehel, J. J. & Schild, G. C. (1971). The polypeptide composition of influenza A viruses. Virology 44, 396.CrossRefGoogle ScholarPubMed
Webster, R. G., Hinshaw, V. S. & Laver, W. G. (1982). Selection and analysis of antigenic variants of the neuraminidase of N2 influenza viruses with monoclonal antibodies. Virology 117, 93104.CrossRefGoogle ScholarPubMed
Zhdanov, V. M., Lvov, N. A., Reznik, V. I., Zakstelskaya, L. Ya., Yakhno, M. A., Isachenko, V. I., Braude, N. A., Reznik, V. I., Pysina, T., Andreyev, V. P. & Podchernyaeva, R. Ya. (1978). Return of epidemic Al (H1N1) influenza virus. Lancet i, 294295.CrossRefGoogle Scholar