The soft palate is an important site of adaptation for transmissible influenza viruses
Seema S Lakdawala1, Akila Jayaraman2, Rebecca A Halpin3
1Laboratory of infectious Diseases, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
Influenza A viruses pose a major public health threat by causing seasonal epidemics and sporadic pandemics. Their epidemiological success relies on airborne transmission from person to person; however, the viral properties governing airborne transmission of influenza A viruses are complex. Influenza A virus infection is mediated via binding of the viral haemagglutinin (HA) to terminally attached α2,3 or α2,6 sialic acids on cell surface glycoproteins. Human influenza A viruses preferentially bind α2,6-linked sialic acids whereas avian influenza A viruses bind α2,3-linked sialic acids on complex glycans on airway epithelial cells. Historically, influenza A viruses with preferential association with α2,3-linked sialic acids have not been transmitted efficiently by the airborne route in ferrets. Here we observe efficient airborne transmission of a 2009 pandemic H1N1 (H1N1pdm) virus (A/California/07/2009) engineered to preferentially bind α2,3-linked sialic acids. Airborne transmission was associated with rapid selection of virus with a change at a single HA site that conferred binding to long-chain α2,6-linked sialic acids, without loss of α2,3-linked sialic acid binding. The transmissible virus emerged in experimentally infected ferrets within 24 hours after infection and was remarkably enriched in the soft palate, where long-chain α2,6-linked sialic acids predominate on the nasopharyngeal surface. Notably, presence of long-chain α2,6-linked sialic acids is conserved in ferret, pig and human soft palate. Using a loss-of-function approach with this one virus, we demonstrate that the ferret soft palate, a tissue not normally sampled in animal models of influenza, rapidly selects for transmissible influenza A viruses with human receptor (α2,6-linked sialic acids) preference.
Insights
Influenza A virus airborne transmission was enhanced by engineering a virus to bind to avian receptors. This virus rapidly adapted to bind human receptors in the ferret soft palate, enabling efficient transmission.
Area of Science:
- Virology
- Epidemiology
- Public Health
Background:
- Influenza A viruses cause seasonal epidemics and pandemics.
- Airborne transmission is key to influenza's spread, but viral properties are complex.
- Human and avian influenza viruses bind different sialic acid receptors (α2,6 and α2,3, respectively).
Purpose of the Study:
- To investigate the airborne transmission of influenza A viruses engineered to bind avian receptors.
- To understand viral adaptation during airborne transmission.
- To identify host factors influencing influenza transmission.
Main Methods:
- Engineered a 2009 pandemic H1N1 virus (H1N1pdm) to preferentially bind α2,3-linked sialic acids.
- Studied airborne transmission in ferrets.
- Analyzed viral genetic changes and tissue tropism using sequencing and tissue sampling.
- Investigated the role of the soft palate in transmission.
Main Results:
- Efficient airborne transmission of the engineered α2,3-binding H1N1pdm virus was observed.
- Rapid selection for a single hemagglutinin (HA) mutation occurred, enabling binding to both α2,3 and α2,6 sialic acids.
- Transmissible virus was enriched in the ferret soft palate, which expresses long-chain α2,6-linked sialic acids.
- This adaptation occurred within 24 hours post-infection.
Conclusions:
- The ferret soft palate can rapidly select for transmissible influenza A viruses with human-like receptor preference (α2,6-linked sialic acids).
- This finding highlights the importance of the soft palate in influenza transmission dynamics.
- Understanding receptor binding and tissue tropism is crucial for predicting and controlling influenza pandemics.
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