Haemagglutinin mutations responsible for the binding of H5N1 influenza A viruses to human-type receptors.

Shinya Yamada1 Yasuo Suzuki Takashi Suzuki Mai Q Le Chairul A Nidom Yuko Sakai-Tagawa Yukiko Muramoto Mutsumi Ito Maki Kiso Taisuke Horimoto Kyoko Shinya Toshihiko Sawada Makoto Kiso Taiichi Usui Takeomi Murata Yipu Lin Alan Hay Lesley F Haire David J Stevens Rupert J Russell Steven J Gamblin John J Skehel Yoshihiro Kawaoka
Affiliations 1 institutions
  1. Division of Virology, Department of Microbiology and Immunology, Institute of Medical Science, University of Tokyo, Tokyo 108-8639, Japan.

Abstract

H5N1 influenza A viruses have spread to numerous countries in Asia, Europe and Africa, infecting not only large numbers of poultry, but also an increasing number of humans, often with lethal effects. Human and avian influenza A viruses differ in their recognition of host cell receptors: the former preferentially recognize receptors with saccharides terminating in sialic acid-alpha2,6-galactose (SAalpha2,6Gal), whereas the latter prefer those ending in SAalpha2,3Gal (refs 3-6). A conversion from SAalpha2,3Gal to SAalpha2,6Gal recognition is thought to be one of the changes that must occur before avian influenza viruses can replicate efficiently in humans and acquire the potential to cause a pandemic. By identifying mutations in the receptor-binding haemagglutinin (HA) molecule that would enable avian H5N1 viruses to recognize human-type host cell receptors, it may be possible to predict (and thus to increase preparedness for) the emergence of pandemic viruses. Here we show that some H5N1 viruses isolated from humans can bind to both human and avian receptors, in contrast to those isolated from chickens and ducks, which recognize the avian receptors exclusively. Mutations at positions 182 and 192 independently convert the HAs of H5N1 viruses known to recognize the avian receptor to ones that recognize the human receptor. Analysis of the crystal structure of the HA from an H5N1 virus used in our genetic experiments shows that the locations of these amino acids in the HA molecule are compatible with an effect on receptor binding. The amino acid changes that we identify might serve as molecular markers for assessing the pandemic potential of H5N1 field isolates.

Supporting text Virus Host Location
Animals 1948 Cell Line 158 Crystallography, X-Ray 32 Dogs 176 Hemagglutinin Glycoproteins, Influenza Virus 180 Humans 1440 Influenza A Virus, H5N1 Subtype 300 Mutation 209 Poultry 112 Receptors, Virus 204

Evidence records

2 total
Functional Mechanism
2 records · 2 evidence types
Evidence type
1 records
OVE385
Key finding

Some H5N1 influenza A viruses isolated from humans can bind both human-type (SAα2,6Gal) and avian-type (SAα2,3Gal) receptors, unlike those from chickens and ducks which recognize avian-type receptors only.

Virus
Host
Location
Not specified
Supporting text

Here we show that some H5N1 viruses isolated from humans can bind to both human and avian receptors, in contrast to those isolated from chickens and ducks, which recognize the avian receptors exclusively.

Method
receptor-binding assay
Receptors
human-type receptor (SAα2,6Gal) | avian-type receptor (SAα2,3Gal)
Evidence type
1 records
OVE386
Key finding

Mutations at HA positions 182 and 192 convert H5N1 influenza A virus haemagglutinin from avian-type to human-type receptor recognition.

Virus
Host
Not specified
Location
Not specified
Supporting text

Mutations at positions 182 and 192 independently convert the HAs of H5N1 viruses known to recognize the avian receptor to ones that recognize the human receptor.

Genes or proteins
haemagglutinin | HA
Receptors
avian receptor | human receptor | SAα2,3Gal | SAα2,6Gal
Mutations
position 182 | position 192
Mechanism types
receptor binding | receptor usage | host-range expansion