Mammalian Pathogenesis and Transmission of H7N9 Influenza Viruses from Three Waves, 2013-2015
Jessica A Belser1, Hannah M Creager1,2, Xiangjie Sun1
1Influenza Division, National Center for Immunization and Respiratory Diseases, Centers for Disease Control and Prevention, Atlanta, Georgia, USA.
Unlabelled:
Three waves of human infection with H7N9 influenza viruses have concluded to date, but only viruses within the first wave (isolated between March and September 2013) have been extensively studied in mammalian models. While second- and third-wave viruses remain closely linked phylogenetically and antigenically, even subtle molecular changes can impart critical shifts in mammalian virulence. To determine if H7N9 viruses isolated from humans during 2013 to 2015 have maintained the phenotype first identified among 2013 isolates, we assessed the ability of first-, second-, and third-wave H7N9 viruses isolated from humans to cause disease in mice and ferrets and to transmit among ferrets. Similar to first-wave viruses, H7N9 viruses from 2013 to 2015 were highly infectious in mice, with lethality comparable to that of the well-studied A/Anhui/1/2013 virus. Second- and third-wave viruses caused moderate disease in ferrets, transmitted efficiently to cohoused, naive contact animals, and demonstrated limited transmissibility by respiratory droplets. All H7N9 viruses replicated efficiently in human bronchial epithelial cells, with subtle changes in pH fusion threshold identified between H7N9 viruses examined. Our results indicate that despite increased genetic diversity and geographical distribution since their initial detection in 2013, H7N9 viruses have maintained a pathogenic phenotype in mammals and continue to represent an immediate threat to public health.
Importance:
H7N9 influenza viruses, first isolated in 2013, continue to cause human infection and represent an ongoing public health threat. Now entering the fourth wave of human infection, H7N9 viruses continue to exhibit genetic diversity in avian hosts, necessitating continuous efforts to monitor their pandemic potential. However, viruses isolated post-2013 have not been extensively studied, limiting our understanding of potential changes in virus-host adaptation. In order to ensure that current research with first-wave H7N9 viruses still pertains to more recently isolated strains, we compared the relative virulence and transmissibility of H7N9 viruses isolated during the second and third waves, through 2015, in the mouse and ferret models. Our finding that second- and third-wave viruses generally exhibit disease in mammals comparable to that of first-wave viruses strengthens our ability to extrapolate research from the 2013 viruses to current public health efforts. These data further contribute to our understanding of molecular determinants of pathogenicity, transmissibility, and tropism.
Insights
Avian influenza H7N9 viruses from 2013-2015 remain highly pathogenic in mammals, showing similar virulence and transmissibility to earlier strains. This indicates H7N9 poses an ongoing public health threat requiring continued monitoring.
Area of Science:
- Virology
- Infectious Diseases
- Public Health
Background:
- The H7N9 influenza virus, first identified in 2013, has caused multiple waves of human infection.
- Subsequent waves of H7N9 viruses have shown genetic diversity, raising questions about maintained pathogenicity and transmissibility in mammals.
- Limited research exists on H7N9 viruses isolated after the first wave, hindering understanding of virus-host adaptation.
Purpose of the Study:
- To compare the virulence and transmissibility of H7N9 influenza viruses from the first (2013), second, and third waves (through 2015) in mammalian models.
- To determine if H7N9 viruses isolated in later waves maintained the pathogenic phenotype observed in early isolates.
- To assess the relevance of existing research on 2013 H7N9 strains to more recently circulating viruses.
Main Methods:
- Assessed the pathogenicity of first-, second-, and third-wave H7N9 viruses in mouse and ferret models.
- Evaluated the transmissibility of these viruses among ferrets, including transmission via respiratory droplets.
- Examined viral replication in human bronchial epithelial cells and analyzed pH fusion thresholds.
Main Results:
- H7N9 viruses from 2013-2015 demonstrated high infectivity and lethality in mice, comparable to the 2013 reference strain.
- Second- and third-wave viruses caused moderate disease in ferrets and transmitted efficiently between cohoused animals.
- Limited respiratory droplet transmission was observed in ferrets, and all tested viruses replicated well in human bronchial cells with minor pH fusion differences.
Conclusions:
- Despite genetic diversity and wider distribution, H7N9 influenza viruses have maintained their pathogenic phenotype in mammals.
- These findings underscore that H7N9 viruses continue to pose a significant and immediate threat to public health.
- Continued surveillance and research are crucial for understanding and mitigating the pandemic potential of H7N9 influenza.
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