Search bioRxiv⌕ Search

Biology subjects

Daines, R.

Publications and source records attributed to Daines, R..

6 recordsLinked to original sources

Mapping Haemagglutinin Residues Driving Antigenic Diversity in H5Nx Avian Influenza Viruses

Since its emergence in 1996, the H5 avian influenza virus (AIV) A/Goose/Guangdong/1/1996 (Gs/GD) haemagglutinin (HA) has evolved into over 30 genetically and antigenically distinct clades, including the widespread clade 2.3.4.4b. Vaccination is widely used in endemic regions to reduce poultry losses and zoonotic risk. However, the evolving antigenic diversity and global co-circulation of multiple clades challenges protective efficacy of poultry vaccines with poor antigenic matching to field strains, resulting in immune escape and vaccine failure. This study aimed to improve vaccine seed selection by identifying HA epitopes contributing to inter-clade antigenic differences. Recombinant clade-representative viruses were generated using HA genes from circulating H5 AIVs via reverse genetics with A/Puerto Rico/8/1934 (PR8) internal and neuraminidase genes. Antigenic relationships were assessed using haemagglutination inhibition (HI) assays with homologous and heterologous chicken antisera. Antigenic cartography revealed a clear distinction of clade 2.3.4.4 from others and notable intra-clade diversity. Pairwise antigenic and genetic comparisons identified 48 putative antigenic residues. These were individually introduced into a candidate HA by site-directed mutagenesis, and antigenic influence assessed by HI using sera raised against the non-mutated HA. Four residues R82K, A83T, T204I, and F229Y had significant antigenic effects, with three (R82K, T204I, F229Y) being novel. These findings demonstrate that combining serology and in silico residue analysis can identify key antigenic determinants. This work highlights the need for precise antigenic matching in vaccine design and highlights the value of combining molecular and immunological tools to optimise vaccine seed selection against diverse and evolving H5 AIV strains. ImportanceThe continued evolution of H5 avian influenza viruses (AIVs), particularly the Gs/GD lineage, poses major challenges for poultry disease control and zoonotic risk mitigation. Vaccine effectiveness is undermined by antigenic drift and the co-circulation of diverse clades, often leading to mismatches between vaccine and field strains. This study addresses the critical need to improve vaccine strain selection by identifying haemagglutinin (HA) residues driving antigenic variation across H5 clades. Using recombinant viruses, antigenic cartography, haemagglutination inhibition (HI) assays, and mutagenesis, 48 putative antigenic residues were identified, with four R82K, A83T, T204I, and F229Y having major antigenic effects, three of which were novel. These findings advance our understanding of H5 antigenic evolution and provide a framework for predicting vaccine performance. By integrating molecular and serological data, our work informs rational vaccine seed strain selection, contributing to more broadly protective vaccines and improved control of H5 AIV in poultry, while reducing the risk of zoonotic transmission.

immunology↗

The Haemagglutinin Gene of Bovine Origin H5N1 Influenza Viruses Currently Retains an Avian Influenza Virus phenotype.

Clade 2.3.4.4b H5N1 high pathogenicity avian influenza virus (HPAIV) has caused a panzootic affecting all continents except Australia, expanding its host range to several mammalian species. In March 2024, H5N1 HPAIV was first detected in dairy cattle and goats in the United States. Since then, over 230 dairy farms across 14 states have tested positive, with zoonotic infections reported among dairy workers. This raises concerns about the virus undergoing evolutionary changes in cattle that could enhance its zoonotic potential. The Influenza glycoprotein haemagglutinin (HA) facilitates entry into host cells through receptor binding and pH-induced fusion with cellular membranes. Adaptive changes in HA modulate virus-host cell interactions. This study compared the HA genes of cattle and goat H5N1 viruses with the dominant avian-origin clade 2.3.4.4b H5N1 in the United Kingdom, focusing on receptor binding, pH fusion, and thermostability. All the tested H5N1 viruses showed binding exclusively to avian-like receptors, with a pH fusion of 5.9, outside the pH range associated with efficient human airborne transmissibility (pH 5.0 to 5.5). We further investigated the impact of emerging HA substitutions seen in the ongoing cattle outbreaks, but saw little phenotypic difference, with continued exclusive binding to avian-like receptor analogues and pHs of fusion above 5.8. This suggests that the HA genes from the cattle and goat outbreaks do not pose an enhanced threat compared to circulating avian viruses. However, given the rapid evolution of H5 viruses, continuous monitoring and updated risk assessments remain essential to understanding virus zoonotic and pandemic risks.

microbiology↗

The Haemagglutinin Genes of the UK Clade 2.3.4.4b H5N1 Avian Influenza Viruses from 2020 to 2022 Retain Strong Avian Phenotype

Since 2020, the United Kingdom (UK) has suffered repeated epizootics of clade 2.3.4.4b H5 high pathogenicity avian influenza viruses (HPAIVs) in wild birds and poultry, resulting in substantial economic losses due to enforced statutory control. The rapid evolution of H5 HPAIVs continues to raise concern with heightened zoonotic and pandemic risks. The immunodominant haemagglutinin glycoprotein (HA) is crucial for influenza virus receptor binding and pH-induced fusion of viral and cellular membranes. Mutations in HA are frequent due to polymerase error, immune pressure and host adaptation, resulting in antigenic modulation and/or an expansion of host tropism, respectively, ultimately hindering control strategies. We evaluated a comprehensive panel of H5 viruses representing prevalent genotypes from UK outbreaks spanning 2020 to 2022 for HA functionality. HA genes from each genotype were assessed through receptor binding, pH of fusion, thermostability and HA inhibition assays to evaluate factors contributing to zoonotic potential, stability, and antigenicity. The viruses only bound to avian receptors and exhibited fusion at a pH of 5.8, above the pH range (pH 5.0 to 5.5) associated with efficient human-to-human transmission. Therefore, these H5 viruses have low immediate zoonotic threat. Contemporary H5 viruses were more thermostable and showed antigenic drift compared to the earlier 2017-2018 clade 2.3.4.4b H5N8 viruses, and N236D in HA was identified as a significant antigenic epitope. The findings of this study underscore the evolving nature of the HA of these viruses and highlight the importance of ongoing surveillance and characterisation efforts to identify factors that might contribute to zoonotic risk.

microbiology↗

Investigation of H9N2 avian influenza immune escape mutant that lacks haemagglutination activity

H9N2 avian influenza viruses pose a global threat to animal and human health. While vaccination is essential for mitigating disease impact, these viruses evolve to evade vaccine immunity through changes in the haemagglutinin (HA) glycoprotein. In this study, we identified immune escape mutation in an H9N2 virus resulting from pressure exerted by homologous chicken antisera. The immune-escape variant acquired an amino acid substitution, replacing glycine (G) with glutamic acid (E) at position 149 in the HA protein. The G149E mutant virus lost the ability to agglutinate chicken erythrocytes, while still maintaining replication comparable to the wild-type virus in chicken embryos and cells. This led to the hypothesis that the G149E substitution, leading to a shift from a neutral to a negative charge polarity at HA position 149, might be crucial for the optimal interaction between the virus and receptors on erythrocytes. Investigation indicated that agglutination could be restored by substituting E to positively charged amino acids histidine (H), arginine (R) or lysine (K). These findings suggest that the H9N2 virus may be likely acquire the G149E mutation under immune pressure in nature. This mutation poses challenges to vaccination and surveillance efforts as it partially evades immune protection and is not easily detectable by conventional haemagglutination assays. This underscores the intricate interplay between antigenic variation and viral traits, emphasising the critical need for ongoing surveillance and research to effectively mitigate the risks associated with avian influenza H9N2 viruses. IMPORTANCEUnderstanding how avian influenza viruses evolve to persist in nature is crucial for enhancing disease mitigation tools such as vaccines, diagnostics, and risk assessment. In this study, we identified an H9N2 virus antibody escape mutant with G149E mutation in the haemagglutinin that had lost the ability to agglutinate chicken erythrocytes, while retaining infectivity and replication fitness. The lack of haemagglutination activity potentially negatively impacts routine surveillance and commonly used diagnostics such as haemagglutination assay or haemagglutination inhibition assay. Therefore, it is urgent to develop and adopt alternative methods for viral detection. Difficult to detect variants potentially that are not compatible with common surveillance techniques could circulate remain silent while reassort with other influenza viruses, which posing unpredictable risks to animal and human health. This research helps us better understand avian influenza, leading to improved disease control, diagnostics, and risk assessment to protect both animals and humans.

microbiology↗

Risk Assessment of the newly emerged H7N9 avian influenza viruses

Since the first human case in 2013, H7N9 avian influenza viruses (AIVs) have caused more than 1500 human infections with a mortality rate of approximately 40%. Despite large-scale poultry vaccination regimes across China, the H7N9 AIVs continue to persist and evolve rapidly in poultry. Recently, several strains of H7N9 AIVs have been isolated and shown the ability to escape vaccine-induced immunity. To assess the zoonotic risk of the recent H7N9 AIV isolates, we rescued viruses with hemagglutinin (HA) and neuraminidase (NA) from these H7N9 AIVs and six internal segments from PR8 virus (A/Puerto Rico/8/34 [H1N1]) and characterized their receptor binding, pH of fusion, thermal stability, plaque morphology and in ovo virus replication. We also assessed the cross-reactivity of the viruses with human monoclonal antibodies (mAbs) against H7N9 HA and ferret antisera against H7N9 AIV candidate vaccines. The H7N9 AIVs from the early epidemic waves had dual sialic acid receptor binding characteristics, whereas the more recent H7N9 AIVs completely lost or retained only weak human sialic acid receptor binding. Compared with the H7N9 AIVs from early epidemic waves (2013-2016), the recent (2020/21) viruses formed larger plaques and increased replication titres in ovo, demonstrating increased acid stability but reduced thermal stability. Further analysis showed that these recent H7N9 AIVs had poor cross-reactivity with the human mAbs and ferret antisera, highlighting the need to update the vaccine candidates. To conclude, the newly emerged H7N9 AIVs showed characteristics of typical AIVs, posing reduced zoonotic risk but a heightened threat for poultry.

microbiology↗

Antigenic characterisation of human monoclonal antibodies for therapeutic use against H7N9 avian influenza virus

Since 2013, H7N9 avian influenza viruses (AIVs) have caused more than 1500 human deaths and millions of poultry culling. Despite large-scale poultry vaccination, H7N9 AIVs continue to circulate among poultry in China and pose a threat to human health. Previously, we isolated and generated four monoclonal antibodies (mAbs) derived from humans naturally infected with H7N9 AIV. Here, we investigated the haemagglutinin (HA) epitopes of H7N9 AIV targeted by these mAbs (L3A-44, K9B-122, L4A-14 and L4B-18) using immune escape studies. Our results revealed four key antigenic epitopes at HA amino acid positions 125, 133, 149, and 217. The mutant H7N9 viruses representing escape mutations containing Alanine to Threonine at residue 125 (A125T), Glycine to Glutamic acid at residue 133 (G133E), Asparagine to Aspartic acid at residue 149 (N149D), or Leucine to Glutamine at residue 217 (L217Q) showed reduced or completely abolished cross-reactivity with the mAbs, as measured by hemagglutination inhibition (HI) assay. We further assessed the potential risk of these mutants to humans should they emerge following mAb treatment by measuring the impact of these HA mutations on virus fitness and evasion of host adaptive immunity. Here we showed that the L4A-14 mAb had broad neutralizing capability, and its escape mutant N149D had reduced viral stability and human receptor binding and could be neutralized by both post-infection and antigen-induced sera. Therefore, L4A-14 mAb could be a therapeutic candidate for H7N9 AIV infection in humans and warrants further investigation for therapeutic application. IMPORTANCEAvian Influenza virus (AIV) H7N9 continues to circulate and evolve in birds, posing a credible threat to humans. Antiviral drugs have been proven useful for the treatment of severe influenza infections in humans, however, concerns have been raised as antiviral resistant mutants have emerged. Monoclonal antibodies (mAbs) have been studied for both prophylactic and therapeutic applications in infectious disease control and have demonstrated great potential. For example, mAb treatment has significantly reduced the risk of people developing severe disease with SARS-COV 2 infection. In addition to the protection efficiency, we should also consider the potential risk of the escape mutants generated by mAb treatment to public health by assessing their viral fitness and potential to compromise host adaptive immunity. Considering these parameters, we assessed four human mAbs derived from humans naturally infected with H7N9 AIV and showed that the mAb L4A-14 displayed potential as a therapeutic candidate.

microbiology↗