Mutation of the second sialic acid-binding site of influenza A virus neuraminidase drives compensatory mutations in hemagglutinin.

Wenjuan Du1 Margreet A Wolfert2,3 Ben Peeters4 Frank J M van Kuppeveld1 Geert-Jan Boons2,3 Erik de Vries1 Cornelis A M de Haan1
Affiliations 4 institutions
  1. Section of Virology, Division of Infectious Diseases & Immunology, Department of Biomolecular Health Sciences, Faculty of Veterinary Medicine, Utrecht University, Utrecht, The Netherlands.
  2. Department of Chemical Biology and Drug Discovery, Utrecht Institute for Pharmaceutical Sciences, and Bijvoet Center for Biomolecular Research, Utrecht University, Utrecht, the Netherlands.
  3. Complex Carbohydrate Research Center, University of Georgia, Athens, United States of America.
  4. Wageningen Bioveterinary Research, Department of Virology, Lelystad, the Netherlands.

Abstract

Influenza A viruses (IAVs) cause seasonal epidemics and occasional pandemics. Most pandemics occurred upon adaptation of avian IAVs to humans. This adaptation includes a hallmark receptor-binding specificity switch of hemagglutinin (HA) from avian-type α2,3- to human-type α2,6-linked sialic acids. Complementary changes of the receptor-destroying neuraminidase (NA) are considered to restore the precarious, but poorly described, HA-NA-receptor balance required for virus fitness. In comparison to the detailed functional description of adaptive mutations in HA, little is known about the functional consequences of mutations in NA in relation to their effect on the HA-NA balance and host tropism. An understudied feature of NA is the presence of a second sialic acid-binding site (2SBS) in avian IAVs and absence of a 2SBS in human IAVs, which affects NA catalytic activity. Here we demonstrate that mutation of the 2SBS of avian IAV H5N1 disturbs the HA-NA balance. Passaging of a 2SBS-negative H5N1 virus on MDCK cells selected for progeny with a restored HA-NA balance. These viruses obtained mutations in NA that restored a functional 2SBS and/or in HA that reduced binding of avian-type receptors. Importantly, a particular HA mutation also resulted in increased binding of human-type receptors. Phylogenetic analyses of avian IAVs show that also in the field, mutations in the 2SBS precede mutations in HA that reduce binding of avian-type receptors and increase binding of human-type receptors. Thus, 2SBS mutations in NA can drive acquisition of mutations in HA that not only restore the HA-NA balance, but may also confer increased zoonotic potential.

Supporting text Virus Host Location
Mutation 209 Virus Replication 191 Amino Acid Substitution 81 Animals 1948 Binding Sites 89 Dogs 176 Hemagglutinin Glycoproteins, Influenza Virus 180 Influenza A virus 186 Madin Darby Canine Kidney Cells 36 Neuraminidase 62 Orthomyxoviridae Infections 228 Protein Binding 193 Sialic Acids 29

Evidence records

1 total
Genomic Evolution
1 records · 1 evidence types
Evidence type
1 records
OVE4099
Key finding

Phylogenetic analyses of avian influenza A viruses indicate that neuraminidase 2SBS mutations typically occur before hemagglutinin mutations that reduce avian-type receptor binding and increase human-type receptor binding.

Virus
Host
Location
Not specified
Supporting text

Phylogenetic analyses of avian IAVs show that also in the field, mutations in the 2SBS precede mutations in HA that reduce binding of avian-type receptors and increase binding of human-type receptors.

Genes or proteins
neuraminidase | hemagglutinin
Analysis methods
phylogenetic analysis