Glycosylation at 158N of the hemagglutinin protein and receptor binding specificity synergistically affect the antigenicity and immunogenicity of a live attenuated H5N1 A/Vietnam/1203/2004 vaccine virus in ferrets.

Weijia Wang1 Bin Lu Helen Zhou Amorsolo L Suguitan Xing Cheng Kanta Subbarao George Kemble Hong Jin
Affiliations 1 institutions
  1. MedImmune, 319 North Bernardo Ave., Mountain View, CA 94043, USA.

Abstract

A live attenuated influenza A/Vietnam/1203/2004 (H5N1) vaccine virus (VN04 ca) has receptor binding specificity to alpha2,3-linked sialosides (alpha2,3SAL), and a single dose induces a minimal serum antibody response in mice and ferrets. In contrast, A/Hong Kong/213/2003 (H5N1) vaccine virus (HK03 ca) binds to both alpha2,6SAL and alpha2,3SAL and generates a stronger serum antibody response in animals. Among the 9 amino acids that differed between the two H5 HA1 proteins, several HK03-specific residues enabled the VN04 ca virus to bind to both alpha2,3SAL and alpha2,6SAL receptors, but only the removal of the 158N glycosylation, together with an S227N change, resulted in more-efficient viral replication in the upper respiratory tract of ferrets and an increased serum antibody response. However, the antibody response was HK03 strain specific and did not significantly cross-neutralize VN04 virus. A second approach was taken to adapt the H5N1 VN04 ca virus in MDCK cells to select HA variants with larger plaque morphology. Although a number of large-plaque-size HA variants with amino acid changes in the HA receptor binding region were identified, none of these mutations affected virus receptor binding preference and immunogenicity. In addition, the known receptor binding site changes, Q226L and G228S, were introduced into the HA protein of the VN04 ca virus. Only in conjunction with the removal of the 158N glycosylation did the virus replicate efficiently in the upper respiratory tract of ferrets and became more immunogenic, yet the response was also HK03 specific. Thus, the mask of the antigenic epitopes by 158N glycosylation at the HA globular head and its alpha2,3SAL binding preference of VN04 ca virus affect virus antigenicity and replication in the host, resulting in a lower antibody response.

Supporting text Virus Host Location
Virus Attachment 55 Adaptation, Biological 25 Amino Acid Substitution 81 Animals 1948 Antibodies, Neutralizing 80 Antibodies, Viral 212 Cell Line 158 Dogs 176 Epitopes 17 Ferrets 79 Glycosylation 22 Hemagglutinins, Viral 12 Humans 1440 Influenza A Virus, H5N1 Subtype 300 Influenza Vaccines 20 Mice 253 Mutation, Missense 26 Protein Processing, Post-Translational 4 Receptors, Virus 204 Serial Passage 9 Vaccines, Attenuated 5 Viral Plaque Assay 5 Viral Tropism 45 hemagglutinin fusogenic peptide, influenza virus 2

Evidence records

2 total
Functional Mechanism
2 records · 2 evidence types
Evidence type
1 records
OVE801
Key finding

The A/Hong Kong/213/2003 (H5N1) live attenuated vaccine virus binds both alpha2,6- and alpha2,3-linked sialosides and elicits a stronger antibody response in animals.

Virus
Host
Location
Not specified
Supporting text

In contrast, A/Hong Kong/213/2003 (H5N1) vaccine virus (HK03 ca) binds to both alpha2,6SAL and alpha2,3SAL and generates a stronger serum antibody response in animals.

Method
receptor binding specificity assay
Receptors
alpha2,6SAL | alpha2,3SAL
Evidence type
1 records
OVE802
Key finding

Removal of the 158N glycosylation site together with the S227N substitution in the HA protein of A/Vietnam/1203/2004 (H5N1) enhanced replication in the ferret upper respiratory tract and increased antibody response.

Virus
Host
Not specified
Location
Not specified
Supporting text

Only the removal of the 158N glycosylation, together with an S227N change, resulted in more-efficient viral replication in the upper respiratory tract of ferrets and an increased serum antibody response.

Genes or proteins
HA | hemagglutinin
Receptors
alpha2,3-linked sialosides | alpha2,6-linked sialosides
Mutations
158N glycosylation removal | S227N
Mechanism types
replication adaptation | immune escape | receptor binding | host-range expansion