Receptor binding by a ferret-transmissible H5 avian influenza virus.

Xiaoli Xiong1 Peter J Coombs Stephen R Martin Junfeng Liu Haixia Xiao John W McCauley Kathrin Locher Philip A Walker Patrick J Collins Yoshihiro Kawaoka John J Skehel Steven J Gamblin
Affiliations 1 institutions
  1. MRC National Institute for Medical Research, The Ridgeway, Mill Hill, London NW7 1AA, UK.

Abstract

Cell-surface-receptor binding by influenza viruses is a key determinant of their transmissibility, both from avian and animal species to humans as well as from human to human. Highly pathogenic avian H5N1 viruses that are a threat to public health have been observed to acquire affinity for human receptors, and transmissible-mutant-selection experiments have identified a virus that is transmissible in ferrets, the generally accepted experimental model for influenza in humans. Here, our quantitative biophysical measurements of the receptor-binding properties of haemagglutinin (HA) from the transmissible mutant indicate a small increase in affinity for human receptor and a marked decrease in affinity for avian receptor. From analysis of virus and HA binding data we have derived an algorithm that predicts virus avidity from the affinity of individual HA-receptor interactions. It reveals that the transmissible-mutant virus has a 200-fold preference for binding human over avian receptors. The crystal structure of the transmissible-mutant HA in complex with receptor analogues shows that it has acquired the ability to bind human receptor in the same folded-back conformation as seen for HA from the 1918, 1957 (ref. 4), 1968 (ref. 5) and 2009 (ref. 6) pandemic viruses. This binding mode is substantially different from that by which non-transmissible wild-type H5 virus HA binds human receptor. The structure of the complex also explains how the change in preference from avian to human receptors arises from the Gln226Leu substitution, which facilitates binding to human receptor but restricts binding to avian receptor. Both features probably contribute to the acquisition of transmissibility by this mutant virus.

Supporting text Virus Host Location
Host Specificity 132 Animals 1948 Birds 212 Chick Embryo 20 Crystallography, X-Ray 32 Ferrets 79 Hemagglutinin Glycoproteins, Influenza Virus 180 Humans 1440 Influenza A Virus, H5N1 Subtype 300 Models, Biological 16 Models, Molecular 99 Mutation 209 Orthomyxoviridae Infections 228 Protein Conformation 44 Receptors, Virus 204 Species Specificity 84

Evidence records

2 total
Experimental Infection
1 records · 1 evidence types
Evidence type
1 records
OVE1397
Key finding

A transmissible-mutant H5 avian influenza virus was shown to be transmissible in ferrets, providing experimental evidence of replication and host-range expansion toward mammalian species.

Virus
Host
Location
Not specified
Supporting text

Highly pathogenic avian H5N1 viruses that are a threat to public health have been observed to acquire affinity for human receptors, and transmissible-mutant-selection experiments have identified a virus that is transmissible in ferrets, the generally accepted experimental model for influenza in humans.

Method
transmissible-mutant-selection | animal infection assay
Experimental system
animal challenge model (ferret transmissibility experiment)
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE1396
Key finding

The Gln226Leu substitution in the HA protein of the H5 avian influenza virus alters receptor specificity, facilitating binding to human receptors while reducing affinity for avian receptors, thereby contributing to transmissibility.

Virus
Host
Not specified
Location
Not specified
Supporting text

The structure of the complex also explains how the change in preference from avian to human receptors arises from the Gln226Leu substitution, which facilitates binding to human receptor but restricts binding to avian receptor.

Genes or proteins
HA
Receptors
avian receptor | human receptor
Mutations
Gln226Leu
Mechanism types
receptor binding | receptor usage | host-range expansion | transmission fitness