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PMID: 10864641 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Interdependence of hemagglutinin glycosylation and neuraminidase as regulators of influenza virus growth: a study by reverse genetics.

Journal of virology ·Vol. 74 ·No. 14 ·2000-07-00 ·Pages 6316-23

Wagner R, Wolff T, Herwig A, Pleschka S, Klenk HD

Abstract

The hemagglutinin (HA) of fowl plague virus A/FPV/Rostock/34 (H7N1) carries two N-linked oligosaccharides attached to Asn123 and Asn149 in close vicinity to the receptor-binding pocket. In previous studies in which HA mutants lacking either one (mutants G1 and G2) or both (mutant G1,2) glycosylation sites had been expressed from a simian virus 40 vector, we showed that these glycans regulate receptor binding affinity (M. Ohuchi, R. Ohuchi, A. Feldmann, and H. D. Klenk, J. Virol. 71:8377-8384, 1997). We have now investigated the effect of these mutations on virus growth using recombinant viruses generated by an RNA polymerase I-based reverse genetics system. Two reassortants of influenza virus strain A/WSN/33 were used as helper viruses to obtain two series of HA mutant viruses differing only in the neuraminidase (NA). Studies using N1 NA viruses revealed that loss of the oligosaccharide from Asn149 (mutant G2) or loss of both oligosaccharides (mutant G1,2) has a pronounced effect on virus growth in MDCK cells. Growth of virus lacking both oligosaccharides from infected cells was retarded, and virus yields in the medium were decreased about 20-fold. Likewise, there was a reduction in plaque size that was distinct with G1,2 and less pronounced with G2. These effects could be attributed to a highly impaired release of mutant progeny viruses from host cells. In contrast, with recombinant viruses containing N2 NA, these restrictions were much less apparent. N1 recombinants showed lower neuraminidase activity than N2 recombinants, indicating that N2 NA is able to partly overrule the high-affinity binding of mutant HA to the receptor. These results demonstrate that N-glycans flanking the receptor-binding site of the HA molecule are potent regulators of influenza virus growth, with the glycan at Asn149 being dominant and that at Asn123 being less effective. In addition, we show here that HA and NA activities need to be highly balanced in order to allow productive influenza virus infection.

MeSH Terms
Animals Cattle Cell Line Chickens Erythrocytes/virology Glycosylation Hemagglutinin Glycoproteins, Influenza Virus/genetics,metabolism In Vitro Techniques Influenza A virus/genetics,growth & development,metabolism Mutagenesis, Site-Directed Neuraminidase/genetics,metabolism Receptors, Virus/genetics,metabolism Recombination, Genetic Viral Plaque Assay
Chemicals
Hemagglutinin Glycoproteins, Influenza Virus Receptors, Virus Neuraminidase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Wagner R
Institut für Virologie, Philipps-Universität, 35011 Marburg, Germany.
Wolff T
Herwig A
Pleschka S
Klenk H D
References (37)
37 references, click to expand
  1. Effect of antibody to neuraminidase on the maturation and hemagglutinating activity of an influenza A2 virus.
    J Virol. 1969 Oct;4(4):528-34 PMID: 5823234
  2. Regulation of receptor binding affinity of influenza virus hemagglutinin by its carbohydrate moiety.
    J Virol. 1997 Nov;71(11):8377-84 PMID: 9343193
  3. Inhibition of influenza virus replication in tissue culture by 2-deoxy-2,3-dehydro-N-trifluoroacetylneuraminic acid (FANA): mechanism of action.
    J Gen Virol. 1976 Oct;33(1):159-63 PMID: 978183
  4. Virulence factors of influenza A viruses: WSN virus neuraminidase required for plaque production in MDBK cells.
    J Virol. 1977 Oct;24(1):170-6 PMID: 561860
  5. Synthesis of 2'-(4-methylumbelliferyl)-alpha-D-N-acetylneuraminic acid and detection of skin fibroblast neuraminidase in normal humans and in sialidosis.
    Biochemistry. 1979 Jun 26;18(13):2783-7 PMID: 476051
  6. Structure of the haemagglutinin membrane glycoprotein of influenza virus at 3 A resolution.
    Nature. 1981 Jan 29;289(5796):366-73 PMID: 7464906
  7. Effects of hexose starvation and the role of sialic acid in influenza virus release.
    Virology. 1983 Mar;125(2):324-34 PMID: 6836915
  8. Single amino acid substitutions in influenza haemagglutinin change receptor binding specificity.
    Nature. 1983 Jul 7-13;304(5921):76-8 PMID: 6191220
  9. Carbohydrates of influenza virus. Structural elucidation of the individual glycans of the FPV hemagglutinin by two-dimensional 1H n.m.r. and methylation analysis.
    EMBO J. 1985 Oct;4(10):2711-20 PMID: 4054103
  10. An 18-amino acid deletion in an influenza neuraminidase.
    Virology. 1985 Apr 30;142(2):241-7 PMID: 4060573
  11. Host cell-mediated selection of a mutant influenza A virus that has lost a complex oligosaccharide from the tip of the hemagglutinin.
    Proc Natl Acad Sci U S A. 1986 Jun;83(11):3771-5 PMID: 3459155
  12. The structure and function of the hemagglutinin membrane glycoprotein of influenza virus.
    Annu Rev Biochem. 1987;56:365-94 PMID: 3304138
  13. Structure of the influenza virus haemagglutinin complexed with its receptor, sialic acid.
    Nature. 1988 Jun 2;333(6172):426-31 PMID: 3374584
  14. High-efficiency formation of influenza virus transfectants.
    J Virol. 1991 May;65(5):2711-3 PMID: 2016777
  15. Single amino acid substitutions in the hemagglutinin can alter the host range and receptor binding properties of H1 strains of influenza A virus.
    J Virol. 1991 Jun;65(6):3022-8 PMID: 2033664
  16. Influenza virus hemagglutinin with multibasic cleavage site is activated by furin, a subtilisin-like endoprotease.
    EMBO J. 1992 Jul;11(7):2407-14 PMID: 1628614
  17. Biologic importance of neuraminidase stalk length in influenza A virus.
    J Virol. 1993 Feb;67(2):759-64 PMID: 8419645
  18. A H1 hemagglutinin of a human influenza A virus with a carbohydrate-modulated receptor binding site and an unusual cleavage site.
    Virus Res. 1993 Feb;27(2):147-60 PMID: 8460527
  19. RNA polymerase I catalysed transcription of insert viral cDNA.
    Nucleic Acids Res. 1993 Aug 11;21(16):3607-14 PMID: 8367275
  20. Alterations of the stalk of the influenza virus neuraminidase: deletions and insertions.
    Virus Res. 1993 Aug;29(2):141-53 PMID: 8212856
  21. RNA polymerase I-mediated expression of influenza viral RNA molecules.
    Virology. 1994 Jul;202(1):477-9 PMID: 8009859
  22. Receptor specificity in human, avian, and equine H2 and H3 influenza virus isolates.
    Virology. 1994 Nov 15;205(1):17-23 PMID: 7975212
  23. Influenza type A virus neuraminidase does not play a role in viral entry, replication, assembly, or budding.
    J Virol. 1995 Feb;69(2):1099-106 PMID: 7815489
  24. A novel carbohydrate addition site on the hemagglutinin protein of a highly pathogenic H7 subtype avian influenza virus.
    Virology. 1995 Oct 20;213(1):276-81 PMID: 7483275
  25. The cytoplasmic tail of influenza A virus neuraminidase (NA) affects NA incorporation into virions, virion morphology, and virulence in mice but is not essential for virus replication.
    J Virol. 1996 Feb;70(2):873-9 PMID: 8551626
  26. Characterization of mutants of influenza A virus selected with the neuraminidase inhibitor 4-guanidino-Neu5Ac2en.
    J Virol. 1996 Mar;70(3):1818-27 PMID: 8627706
  27. A plasmid-based reverse genetics system for influenza A virus.
    J Virol. 1996 Jun;70(6):4188-92 PMID: 8648766
  28. Phenotypic expression of HA-NA combinations in human-avian influenza A virus reassortants.
    Arch Virol. 1996;141(6):1091-9 PMID: 8712926
  29. Binding of the influenza A virus to cell-surface receptors: structures of five hemagglutinin-sialyloligosaccharide complexes determined by X-ray crystallography.
    Virology. 1997 May 26;232(1):19-31 PMID: 9185585
  30. Avian influenza A viruses differ from human viruses by recognition of sialyloligosaccharides and gangliosides and by a higher conservation of the HA receptor-binding site.
    Virology. 1997 Jun 23;233(1):224-34 PMID: 9201232
  31. Biosynthesis, intracellular transport and enzymatic activity of an avian influenza A virus neuraminidase: role of unpaired cysteines and individual oligosaccharides.
    J Gen Virol. 1997 Dec;78 ( Pt 12):3233-45 PMID: 9400974
  32. Postreassortment changes in influenza A virus hemagglutinin restoring HA-NA functional match.
    Virology. 1998 May 10;244(2):315-21 PMID: 9601502
  33. The role of influenza A virus hemagglutinin residues 226 and 228 in receptor specificity and host range restriction.
    J Virol. 1998 Sep;72(9):7626-31 PMID: 9696865
  34. Effects of host-dependent glycosylation of hemagglutinin on receptor-binding properties on H1N1 human influenza A virus grown in MDCK cells and in embryonated eggs.
    Virology. 1998 Aug 1;247(2):170-7 PMID: 9705910
  35. The surface glycoproteins of H5 influenza viruses isolated from humans, chickens, and wild aquatic birds have distinguishable properties.
    J Virol. 1999 Feb;73(2):1146-55 PMID: 9882316
  36. Strain-specific differences in the effect of influenza A virus neuraminidase on vector-expressed hemagglutinin.
    Arch Virol. 1999;144(4):781-6 PMID: 10365168
  37. Characterization of temperature sensitive influenza virus mutants defective in neuraminidase.
    Virology. 1974 Oct;61(2):397-410 PMID: 4472498
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
2000-07-00
Pages
6316-23
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC112137
Subset
IM
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