ABSTRACT The incursion of Eurasian-origin genotype A6 A(H5N5) virus into North America expanded the genetic diversity among North American highly pathogenic avian influenza viruses and heightened concern about zoonotic risk. Following a fatal human infection with the A(H5N5) virus A/Washington/2148/2025, viral replication was assessed in polarized human bronchial epithelial cells, and pathogenicity, transmissibility in direct contact and respiratory droplet models, and airborne virus shedding were evaluated in ferrets to inform pandemic risk assessment. A(H5N5) displayed robust replication in Calu-3 cells at 33°C and 37°C, showing kinetics and peak titers comparable to those of contemporary genotype B3.13 and D1.1 A(H5N1) viruses. In ferrets, A(H5N5) replicated efficiently in the respiratory tract, disseminated to extrapulmonary tissues, and caused fatal disease in all inoculated animals. Airborne transmission was not observed, and infrequent, low-level detection of virus in air samples paralleled that of A(H5) viruses that are not transmissible via air in ferrets. In a direct contact model, limited transmission was detected within 4 days of exposure, with evidence of lower respiratory tract replication in contact animals. These findings indicate that the A(H5N5) virus has the capacity for robust replication in an airway epithelial cell line and can cause severe systemic infection and mortality in ferrets but has not acquired adaptations for airborne spread in mammals. Collectively, these results underscore heterogeneity among clade 2.3.4.4b A(H5Nx) viruses in North America and the need for genotype-by-genotype evaluation of newly emerged viruses to understand public health risk. IMPORTANCE The emergence of Eurasian-origin genotype A6 highly pathogenic avian influenza A(H5N5) virus in North America has increased viral diversity and raised concerns about zoonotic and pandemic risk. In this study, we evaluated the replication kinetics, pathogenesis, and transmission of A/Washington/2148/2025 A(H5N5) virus, which was isolated from the first reported human infection with this influenza virus subtype, using polarized human bronchial epithelial cells and the ferret model. The A(H5N5) virus replicated efficiently in vitro at temperatures representative of the upper and lower respiratory tracts and caused fatal systemic disease in inoculated ferrets. Limited transmission was observed during 4 days of direct contact. Airborne virus detection was infrequent and did not result in airborne transmission. These findings show that A(H5N5) virus can replicate robustly in mammalian cells and cause severe disease but lacks adaptations supporting efficient airborne spread, informing assessment of the pandemic risk posed by genotype A6 influenza viruses. The emergence of Eurasian-origin genotype A6 highly pathogenic avian influenza A(H5N5) virus in North America has increased viral diversity and raised concerns about zoonotic and pandemic risk. In this study, we evaluated the replication kinetics, pathogenesis, and transmission of A/Washington/2148/2025 A(H5N5) virus, which was isolated from the first reported human infection with this influenza virus subtype, using polarized human bronchial epithelial cells and the ferret model. The A(H5N5) virus replicated efficiently in vitro at temperatures representative of the upper and lower respiratory tracts and caused fatal systemic disease in inoculated ferrets. Limited transmission was observed during 4 days of direct contact. Airborne virus detection was infrequent and did not result in airborne transmission. These findings show that A(H5N5) virus can replicate robustly in mammalian cells and cause severe disease but lacks adaptations supporting efficient airborne spread, informing assessment of the pandemic risk posed by genotype A6 influenza viruses.
J. Pulit-Penaloza, J. Belser, N. Brock et al.· Journal of Virology· 0 citations
ABSTRACT The recent introduction and spread of HPAI A(H5N1) clade 2.3.4.4b viruses to U.S. dairy cattle demonstrate their ability to adapt to new mammalian hosts. Although multiple A(H5N1) genotypes have caused human infections, only two clade 2.3.4.4b genotypes (B3.13 and D1.1) have been detected in cattle, suggesting clade- or genotype-specific tropism. Understanding how these viruses replicate in human airway and bovine mammary epithelial cells is important for assessing viral evolution, mammalian adaptation, and associated public health risks. Here, we characterized replication kinetics and immune gene expression in human bronchial epithelial (Calu-3) cells and bovine mammary epithelial (MAC-T) cells infected with A(H5N1) clade 2.3.4.4b human isolates representing the B3.13, D1.1, and B3.2 genotypes, an A(H5N1) clade 1 virus, and an A(H1N1)pdm09 strain. All viruses replicated efficiently in Calu-3 cells, although replication was delayed at 33°C compared to 37°C. Clade 2.3.4.4b viruses induced moderate expression of type I interferon and proinflammatory response in Calu-3 cells, but at lower levels than the A(H1N1)pdm09 and A(H5N1) clade 1 strains. Replication and immune activation varied markedly among clade 2.3.4.4b genotypes in MAC-T cells. B3.13 viruses achieved higher titers and triggered stronger induction of innate immune response genes than other A(H5N1) genotypes or clades. These findings indicate genotype- and cell type–specific differences in replication and host responses, with B3.13 showing enhanced tropism in bovine mammary cells, consistent with adaptation that may elevate zoonotic risk. Our results highlight the value of comparative studies across host cell types and diverse viral isolates to inform risk assessments for emerging influenza viruses. IMPORTANCE Influenza A viruses cross species barriers through a combination of factors, including the ability to bind to and infect permissive cells, replicate efficiently, and modulate host immune responses. Since 2024, A(H5N1) clade 2.3.4.4b viruses have continued to evolve, infecting a broad range of avian and mammalian species, including cattle in the United States, and causing sporadic human infections. Here, we evaluated a panel of A(H5N1) clade 2.3.4.4b viruses isolated from humans to assess their replication and host responses in two relevant mammalian cell types: human bronchial epithelial cells and bovine mammary gland epithelial cells. While all genotypes replicated efficiently in human bronchial epithelial cells, only B3.13 viruses showed strong replication and broad host response induction in bovine mammary epithelial cells. These results underscore variation in evolution, tissue tropism, and host adaptation among A(H5N1) clade 2.3.4.4b viruses and highlight the need for continued surveillance and close monitoring of B3.13 genotype viruses. Influenza A viruses cross species barriers through a combination of factors, including the ability to bind to and infect permissive cells, replicate efficiently, and modulate host immune responses. Since 2024, A(H5N1) clade 2.3.4.4b viruses have continued to evolve, infecting a broad range of avian and mammalian species, including cattle in the United States, and causing sporadic human infections. Here, we evaluated a panel of A(H5N1) clade 2.3.4.4b viruses isolated from humans to assess their replication and host responses in two relevant mammalian cell types: human bronchial epithelial cells and bovine mammary gland epithelial cells. While all genotypes replicated efficiently in human bronchial epithelial cells, only B3.13 viruses showed strong replication and broad host response induction in bovine mammary epithelial cells. These results underscore variation in evolution, tissue tropism, and host adaptation among A(H5N1) clade 2.3.4.4b viruses and highlight the need for continued surveillance and close monitoring of B3.13 genotype viruses.
N. Brock, H. Zeng, C. Pappas et al.· Microbiology spectrum· 1 citation