Phenotypic Effects of Substitutions within the Receptor Binding Site of Highly Pathogenic Avian Influenza H5N1 Virus Observed during Human Infection.

Dirk Eggink1 Monique Spronken2 Roosmarijn van der Woude3 Jocynthe Buzink4,2 Frederik Broszeit3 Ryan McBride5,6 Hana A Pawestri7 Vivi Setiawaty7 James C Paulson5,6 Geert-Jan Boons3,8,9,10 Ron A M Fouchier2 Colin A Russell4 Menno D de Jong4 Robert P de Vries3
Affiliations 10 institutions
  1. Department of Medical Microbiology, Academic Medical Center, Amsterdam, the Netherlands [email protected].
  2. Department of Viroscience, Erasmus Medical Center, Rotterdam, the Netherlands.
  3. Department of Chemical Biology and Drug Discovery, Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Utrecht, the Netherlands.
  4. Department of Medical Microbiology, Academic Medical Center, Amsterdam, the Netherlands.
  5. Department of Molecular Medicine, The Scripps Research Institute, La Jolla, California, USA.
  6. Department of Immunology and Microbiology, The Scripps Research Institute, La Jolla, California, USA.
  7. National Institute of Health Research and Development, Ministry of Health, Jakarta, Indonesia.
  8. Bijvoet Center for Biomolecular Research, Utrecht University, Utrecht, the Netherlands.
  9. Complex Carbohydrate Research Center, University of Georgia, Athens, Georgia, USA.
  10. Department of Chemistry, University of Georgia, Athens, Georgia, USA.

Abstract

Highly pathogenic avian influenza (HPAI) viruses are enzootic in wild birds and poultry and continue to cause human infections with high mortality. To date, more than 850 confirmed human cases of H5N1 virus infection have been reported, of which ∼60% were fatal. Global concern persists that these or similar avian influenza viruses will evolve into viruses that can transmit efficiently between humans, causing a severe influenza pandemic. It was shown previously that a change in receptor specificity is a hallmark for adaptation to humans and evolution toward a transmittable virus. Substantial genetic diversity was detected within the receptor binding site of hemagglutinin of HPAI A/H5N1 viruses, evolved during human infection, as detected by next-generation sequencing. Here, we investigated the functional impact of substitutions that were detected during these human infections. Upon rescue of 21 mutant viruses, most substitutions in the receptor binding site (RBS) resulted in viable virus, but virus replication, entry, and stability were often impeded. None of the tested substitutions individually resulted in a clear switch in receptor preference as measured with modified red blood cells and glycan arrays. Although several combinations of the substitutions can lead to human-type receptor specificity, accumulation of multiple amino acid substitutions within a single hemagglutinin during human infection is rare, thus reducing the risk of virus adaptation to humans.IMPORTANCE H5 viruses continue to be a threat for public health. Because these viruses are immunologically novel to humans, they could spark a pandemic when adapted to transmit between humans. Avian influenza viruses need several adaptive mutations to bind to human-type receptors, increase hemagglutinin (HA) stability, and replicate in human cells. However, knowledge on adaptive mutations during human infections is limited. A previous study showed substantial diversity within the receptor binding site of H5N1 during human infection. We therefore analyzed the observed amino acid changes phenotypically in a diverse set of assays, including virus replication, stability, and receptor specificity. None of the tested substitutions resulted in a clear step toward a human-adapted virus capable of aerosol transmission. It is notable that acquiring human-type receptor specificity needs multiple amino acid mutations, and that variability at key position 226 is not tolerated, reducing the risk of them being acquired naturally.

Supporting text Virus Host Location
H5N1 82 hemagglutinin 31 human adaptation 2 influenza virus 29 receptor specificity 4 Adaptation, Physiological 33 Amino Acid Substitution 81 Animals 1948 Binding Sites 89 Biological Variation, Population 1 Birds 212 Dogs 176 Hemagglutinin Glycoproteins, Influenza Virus 180 Hemagglutinins, Viral 12 Humans 1440 Influenza A virus 186 Influenza A Virus, H5N1 Subtype 300 Influenza in Birds 341 Influenza, Human 286 Madin Darby Canine Kidney Cells 36 Poultry 112 Protein Binding 193 Receptors, Virus 204

Evidence records

2 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE3750
Key finding

Individual RBS substitutions in HPAI A/H5N1 viruses did not switch receptor preference, while combinations could confer human-type receptor specificity.

Virus
Host
Location
Not specified
Supporting text

Upon rescue of 21 mutant viruses, most substitutions in the receptor binding site (RBS) resulted in viable virus, but virus replication, entry, and stability were often impeded. None of the tested substitutions individually resulted in a clear switch in receptor preference as measured with modified red blood cells and glycan arrays. Although several combinations of the substitutions can lead to human-type receptor specificity, accumulation of multiple amino acid substitutions within a single hemagglutinin during human infection is rare, thus reducing the risk of virus adaptation to humans.

Method
modified red blood cells | glycan arrays
Receptors
human-type receptors
Host factors
hemagglutinin
Genomic Evolution
1 records · 1 evidence types
Evidence type
1 records
OVE3751
Key finding

Next-generation sequencing revealed substantial genetic diversity within the hemagglutinin receptor binding site of HPAI A/H5N1 viruses evolved during human infection.

Virus
Host
Location
Not specified
Supporting text

Substantial genetic diversity was detected within the receptor binding site of hemagglutinin of HPAI A/H5N1 viruses, evolved during human infection, as detected by next-generation sequencing.

Genes or proteins
hemagglutinin | receptor binding site
Analysis methods
next-generation sequencing