Assessing the effects of a two-amino acid flexibility in the Hemagglutinin 220-loop receptor-binding domain on the fitness of Influenza A(H9N2) viruses.

Yixue Sun1,2 Yulin Cong1 Haiying Yu1 Zhuang Ding1 Yanlong Cong1
Affiliations 2 institutions
  1. Laboratory of Infectious Diseases, College of Veterinary Medicine, Key Laboratory of Zoonosis Research, Ministry of Education, Jilin University, Changchun, People's Republic of China.
  2. JilinResearch & Development Center of Biomedical Engineering, Chanchung University, Changchun, People's Republic of China.

Abstract

The enzootic and zoonotic nature of H9N2 avian influenza viruses poses a persistent threat to the global poultry industry and public health. In particular, the emerging sublineage h9.4.2.5 of H9N2 viruses has drawn great attention. In this study, we determined the effects of the flexibility at residues 226 and 227 in the hemagglutinin on the receptor avidity and immune evasion of H9N2 viruses. The solid-phase direct binding assay showed that residue 226 plays a core role in the receptor preference of H9N2 viruses, while residue 227 affects the preference of the virus for a receptor. Consequently, each of these two successive residues can modulate the receptor avidity of H9N2 viruses and influence their potential of zoonotic infection. The antigenic map based on the cross-hemagglutination inhibition (HI) titers revealed that amino acid substitutions at positions 226 or 227 appear to be involved in antigenic drift, potentially resulting in the emergence of H9N2 immune evasion mutants. Further analysis suggested that increased receptor avidity facilitated by residue 226Q or 227M resulted in a reduction in the HI titer. Among the four naturally-occurring amino acid combinations comprising QQ, MQ, LQ, and LM, the number of viruses with LM accounted for 79.64% of the sublineage h9.4.2.5 and the rescued virus with LM exhibited absolute advantages of in vitro and in vivo replication and transmission. Collectively, these data demonstrate that residues 226 and 227 are under selective pressure and their synergistic regulation of receptor avidity and antigenicity is related to the evolution of circulating H9N2 viruses.

Supporting text Virus Host Location
220-loop 1 H9N2 subtype 2 immune evasion 28 Influenza 61 receptor recognition 2 replication 9 site substitutions 1 transmissibility 13 Amino Acid Motifs 8 Amino Acid Substitution 81 Animals 1948 Chickens 146 Hemagglutination Inhibition Tests 15 Hemagglutinin Glycoproteins, Influenza Virus 180 Humans 1440 Immune Evasion 25 Influenza A Virus, H9N2 Subtype 71 Influenza in Birds 341 Poultry Diseases 74 Protein Domains 45 Receptors, Virus 204

Evidence records

2 total
Functional Mechanism
2 records · 1 evidence types
Evidence type
2 records
OVE4718
Key finding

Amino acid substitutions at positions 226 or 227 in the hemagglutinin of H9N2 viruses contribute to antigenic drift and immune evasion, indicating adaptive molecular mechanisms.

Virus
Host
Not specified
Location
Not specified
Supporting text

The antigenic map based on the cross-hemagglutination inhibition (HI) titers revealed that amino acid substitutions at positions 226 or 227 appear to be involved in antigenic drift, potentially resulting in the emergence of H9N2 immune evasion mutants.

Genes or proteins
hemagglutinin
Mutations
position 226 | position 227
Mechanism types
immune escape | virulence adaptation
OVE4719
Key finding

Residues 226Q or 227M in the hemagglutinin of H9N2 viruses increase receptor avidity and reduce HI titer, linking receptor binding and immune escape adaptation.

Virus
Host
Not specified
Location
Not specified
Supporting text

Further analysis suggested that increased receptor avidity facilitated by residue 226Q or 227M resulted in a reduction in the HI titer.

Genes or proteins
hemagglutinin
Receptors
receptor-binding domain
Mutations
226Q | 227M
Mechanism types
receptor binding | immune escape