Prior to 2021, North America had only had one brush with the Asian-origin HPAI H5 virus; a reassorted H5N8 subtype which appeared in South Korea in January of 2014 before beginning a world tour.
It crossed the north Pacific - carried by migratory birds - the following fall, arriving in the Pacific Northwest in December 2014, sparking the first HPAI H5 epizootic in the United States and Canada (see map above).
That limitation would evaporate in the summer of 2016 when H5N8 reassorted into a far more robust threat (probably in China or Siberia) - arriving in Europe in October - and sparking their biggest (at that time) epizootic on record. EID Journal: Reassorted HPAI H5N8 Clade 2.3.4.4. - Germany 2016).
We also saw this virus spin off several short-lived subtypes, including H5N5, H5N3, and H5N9.
Unlike previous H5Nx incarnations, this new H5N1 showed an increased affinity for infecting mammals, and a much wider avian host range (see DEFRA: The Unprecedented `Order Shift' In Wild Bird H5N1 Positives In Europe & The UK).
By 2022 this `new and improved' H5N1 virus had crossed both the Atlantic and Pacific oceans, spreading first to North America, followed by South America, the Antarctic, and most recently (2026) into Australia/New Zealand.
While avian flu activity still decreased during the hotter months, no longer did HPAI H5 disappear completely each summer. It could be maintained (at low levels) in local birds, livestock, small mammals, and likely even the environment.
All of which makes the HPAI H5 threat of today far different from what it was even a decade ago. The H5N1 virus of today has expanded not only its geographic range, but its host range as well.
Since its arrival in 2021, the H5Nx virus has diversified into more than 100 distinct genotypes in North America alone, with scores of others emerging around the globe. A few notable North American examples include:And it isn't done evolving.
- In late 2023 a new B3.13 genotype emerged that could efficiently infect dairy cattle while mildly infecting dozens of humans
- Last fall we saw 3 new genotypes emerge (D1.1, D1.2, D1.3), with D1.1 producing more severe illness in humans.
- In October 2024 Canada experienced a multi-farm outbreak of emerging N1 genotype of H5N1 that was highly resistant to NAI antivirals (carrying the H275Y mutation)
A 2016 study (see Sci Repts.: Southward Autumn Migration Of Waterfowl Facilitates Transmission Of HPAI H5N1), suggests that waterfowl pick up new HPAI viruses in the spring (likely from poultry or terrestrial birds) on their northbound trip to their summer breeding spots - where they spread and potentially evolve - and then redistribute them on their southbound journey the following fall.
Our own Arctic Refuge, where more than 200 bird species spend their summers, serves as a central hub, and funnels migratory birds south via all four North American Flyways.
While this fall's HPAI viruses could be similar to what we saw last year - they might include new, potentially game-changing, genotypes - which could either increase or decrease their threat.Evolution is a double-edged sword, and what it adds it can also take away. But the trajectory of H5N1 over the past 4+ years has been towards more mammalian adaptation, and increased host range.
The APPA estimates `Eleven (11) million U.S. households own backyard chickens (a 28% increase from 2023)', yet a recent survey (see MMWR: Knowledge, Attitudes, and Practices Regarding Avian Influenza Among Owners of Backyard Flocks) found significant gaps in their knowledge of dealing with avian flu.
While no one can predict with any confidence what HPAI will look like later this fall, the one thing we can be sure of is the 2026 fall southbound migration has already begun, and the time to prepare for its arrival grows shorter with every passing day.
And if recent history is any guide, we should be preparing for additional surprises.

