Tuesday, July 21, 2026

Preprint: HPAI H5N5 in a Polar Bear and Atlantic Walrus, Svalbard, 2026, with Widespread Seroconversion in Polar Bears

 

#19,256

While running a distant 2nd to H5N1, a spin-off ressortant - HPAI H5N5 - continues to make inroads in northern Europe, Canada, and the United States (see March 2026's Viral Creep: H5N5 Update), and in the fall of 2025 it fatally infected a backyard poultry keeper in Washington State.

Four years ago the Norwegian Veterinary Institute reported both H5N1 and H5N5 for the first time in wild birds on Svalbard, which lies above the Arctic circle (see More HPAI (H5N5 & H5N1) Detected In Arctic (Svalbard).

Since then we've been tracking a small - but growing - number of spillovers of H5N5 to mammals in both Europe and Canada, including seals in the UK, domestic cats in Iceland, and raccoons (and other small mammals) in Canada.

Two summers ago (2024) in Cell Reports: Multiple Transatlantic Incursions of HPAI clade 2.3.4.4b A(H5N5) Virus into North America and Spillover to Mammals, researchers reported finding the mammalian adaptive E627K mutation in a number of samples. 

Note: Many of the H5N5 viruses that have spread across Canada and the United States have reassorted with local LPAI viruses, and are now genetically distinct from the Svalbard & European lineages, making direct comparisons difficult. 

Two months ago (May 20th) the Norway Veterinary Institute, announced the detection of HPAI H5N5 virus in both a dead walrus and a polar bear on Svalbard Island. 

Although no other animals were confirmed infected during this investigation, there were eye witness accounts of two other polar bears exhibiting potential neurological symptoms. 

Today we've an unusually rapid follow-up report; a preprint published yesterday on the bioRxiv server that reports that H5N5 exposure is far more common among polar bears on Svalbard island than previously thought.

Somewhat surprisingly, most polar bears appear to survive H5N5 infection, although severe (and likely neurotropic) illness can occur.  

First, the Abstract and a few excerpts from the preprint, but you'll want to read it in its entirety. I'll return after the break with a bit more. 

Highly Pathogenic Avian Influenza H5N5 in a Polar Bear and Atlantic Walrus, Svalbard, 2026, with Widespread Seroconversion in Polar Bears
 Knut Madslien,  Johanna Hol Fosse,  Jon Aars,  Cathrine Arnason Bøe, Magnus Andersen,  Kayla Buhler, Ingvild Fjeldheim,  Britt Gjerset, Torhild Jørgensen,  Ida Kristin Myhrvold,  Andreas Rohringer,  Kjersti Sturød,  Morten Tryland,  Bjørnar Ytrehus, Ragnhild Tønnessen,  Ingebjørg Helena Nymo
doi: https://doi.org/10.64898/2026.07.20.739480
This article is a preprint and has not been certified by peer review [what does this mean?].
  

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Abstract

Highly pathogenic avian influenza virus (HPAIV) subtype H5N5 was detected in a one-year-old polar bear (Ursus maritimus) and an adjacent adult Atlantic walrus (Odobenus rosmarus rosmarus), both found deceased in Raudfjorden, Svalbard. This represents the first confirmed case of HPAI in a European polar bear and the second in an Atlantic walrus.

Viral genomes were nearly identical and harbored PB2-E627V, a marker associated with mammalian adaptation. Several polar bears, including the deceased individual, had previously been observed feeding on the walrus carcass. 

Antibodies against H5 were detected in 75% of polar bears in 2023 (n=36) and 97% in 2024-2025 (n=65), suggesting extensive circulation of HPAIV in the population following the first detections in birds in Svalbard in 2022, whereas no antibodies were detected in samples from 2014-2022 (n=243).

        (SNIP)

Although no human cases have been linked to the HPAIV H5N5 PB2-E627V cluster, its detection across diverse mammalian species indicates a broad host range. Occurrence in both terrestrial and marine mammals suggests that ecological interactions, including predation and scavenging, may facilitate cross-species transmission.

These findings are consistent with incremental, multigenic adaptation enabling infection of multiple hosts without evidence of full mammalian adaptation. Although HPAIV H5N5 can be zoonotic (43), the risk of zoonotic spillover to humans is considered very low for H5N5 detected in wildlife species with little or no human contact.

Nevertheless, the transmission to novel host species underscores the importance of timely risk assessment, surveillance, and infection preparedness, as well as awareness and adherence to appropriate biosafety measures among wildlife professionals.

Continued circulation within an avian-associated lineage as well as uncertainties on disease reservoir and adaptation underscores the need for disease surveillance at the wildlife–human interface in Arctic and North Atlantic regions.

The current report highlights that H5 HPAIV circulates in Arctic ecosystems and infects apex predators. Although no population-level effects are currently evident, detection in brain tissue and field observations suggest that disease can occur at the individual level. The identification of PB2-E627V and additional polymerase-associated changes is consistent with adaptation to mammals within an avian-associated lineage. These findings highlight the need for continued surveillance to clarify transmission pathways, evolutionary dynamics, and potential health effects.

        (Continue . . . )


Whether H5N5 has `legs', and can compete successfully against a far more  prevalent H5N1 virus, remains to be seen. But its persistence, and continued evolution, make it very much worth watching. 

Perhaps the bigger question is how much `silent' transmission of HPAI H5Nx is occurring unnoticed in mammalian wildlife?

The above preprint lists only one confirmed infection of a polar bear with H5N5 on Svalbard island, yet seroprevalence studies suggest 97% exposure.

How common this kind of disparity might be in other species is unknown. 

Surveillance here in the United States - and around the world - is mostly passive, and based on the successful detection, recovery, and testing of dead animals found in the wild. 

The USDA only lists 813 mammalian wildlife detections in the United States over the past 4 years, which likely only represents a tiny fraction of actual infections. 


There are a few studies which suggests much greater infectivity, including last year's Serological Evidence of Exposure to Eurasian-Lineage HPAI H5N1 Clade 2.3.4.4b in Wild Mammals in Ohio, USA, 2024-2025, which found substantial evidence among trapped raccoons and opossums from Ohio marshes where H5N1 had already been confirmed in waterfowl. 

They reported:
Specifically, antibodies to avian influenza virus nucleoprotein were detected in 54.9% (n = 61) of samples using enzyme-linked immunosorbent assay; antibodies to Eurasian-lineage highly pathogenic avian influenza H5 clade 2.3.4.4b and North American low pathogenic avian influenza H5 were detected in 43.2% (n = 48) and 22.5% (n = 25) of samples, respectively, using virus neutralization assays; and antibodies to avian influenza virus neuraminidase were detected in 44.1% (n = 49) of samples using enzyme-linked lectin assay. 
Yet officially, Ohio has only detected 5 instances of H5N1 (4 domestic cats, 1 mink), and none in mammalian wildlife.  

While all of this is admittedly based on just two surveys - involving different subtypes and different mammalian species - this reminds us that much of what H5Nx is doing in the wild occurs outside of our view.  

While ignorance may be bliss, what we don't know can come back and hurt us. 
 

Monday, July 20, 2026

Preprint: Bovine-derived H5N1 influenza virus efficiently infects lactating swine via the mammary gland




#19,255

As alarming as the spillover of HPAI H5N1 to dairy cattle has been, the mammalian livestock species believed to have the greatest potential for spawning new reassortant viruses is swine, which are known to harbor a wide variety of influenza A viruses.  

Although detections in swine have been limited, we've seen scattered evidence that H5N1 can infect pigs, albeit often asymptomatically. A few past reports include:
In May of 2023, in Netherlands: Zoonoses Experts Council (DB-Z) Risk Assessment & Warning of Swine As `Mixing Vessels' For Avian Flu, we looked at growing concerns in Europe that avian H5N1 could increase its pandemic threat by spreading (and evolving) in farmed swine.

But the reality is, testing for avian flu viruses in pigs remains both voluntary and rare. According to the USDA, as of Sept.1, 2025 there were 74.5 million hogs and pigs on U.S. farms, but in their last published Influenza A Virus in Swine Surveillance report (Q4), they report testing only  977 samples in 2025.
The USDA further notes:

Due to the voluntary nature of this surveillance, the information in this report cannot be used to determine regional and/or national incidence, prevalence, or other epidemiological measures, but it may help identify IAV-S trends.
Since HPAI H5 often presents in pigs as a mild or even asymptomatic infection, and surveillance is generally passive, there are many opportunities for the virus to spread silently in swine herds. 

We've revisited this topic several times in recent weeks.  

Earlier this month, in J. Virology: Receptor profiling and growth assessment of influenza A virus in porcine mammary and non-mammary tissues and derived cells, we looked at an in vitro study that tested the infectivity and replication of 4 different influenza viruses (Bovine H5N1, LPAI H5N1, Swine H1N2, and Human H1N1) across an array of porcine cell lines (primary nasal turbinate, trachea, lung and mammary gland epithelial cells).

They reported that porcine mammary epithelial cells contain both SA-α2,3 avian‑type and SA-α2,6 human‑type receptor cells and can support replication of bovine H5N1 B3.13 to relatively high titers, suggesting lactating pigs are a plausible host for this genotype.

Four days ago, in EID Journal: Detection of Highly Pathogenic Avian Influenza A(H5N1) Clade 2.3.4.4b Genotype D1.2 Virus in Swine after Experimental Inoculation, we looked at live animal study that found that H5N1 genotype D1.2 appears to be well suited to mildly (or asymptomatically) infect - and replicate systemically - in pigs.

Today we can add a preprint (not yet peer-reviewed) from Ohio State University which finds that a bovine-derived D1.1 genotype (from a Nevada dairy herd) of H5N1 efficiently infects the mammary gland of lactating pigs, and that viral RNA  was detected in oral swabs of suckling pigs.

I've only posted the abstract, and a brief excerpt. Follow the link to read it in its entirety.  I'll have a brief postscript after the break.


Bovine-derived H5N1 influenza virus efficiently infects lactating swine via the mammary gland
 Min Liu,  Natalie N Chillson, Emma A Martin, Hannah J Cochran,  Janice Y Park, Brady O'Boyle,  Devra Huey, Kara N Corps,  Andrew S Bowman, Cody J Warren
doi: https://doi.org/10.64898/2026.07.18.739312
This article is a preprint and has not been certified by peer review [what does this mean?].

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Abstract


Since 2024, highly pathogenic influenza A(H5N1) viruses have spread extensively among U.S. dairy cattle, where they replicate efficiently in the mammary gland and are shed at high titers in milk. To directly assess susceptibility of commercial swine populations to bovine-derived H5N1 virus, lactating sows with prior influenza virus vaccination histories representative of U.S. commercial swine production systems were inoculated via the intramammary route and co-housed with their 1-week-old piglets to evaluate disease outcomes, viral replication, and potential for vertical transmission. 

Intramammary inoculation of lactating sows resulted in sustained viral RNA shedding in milk, while piglets exhibited sporadic oral viral RNA positivity that mirrored viral kinetics in milk. Lesions in mammary tissue and viral antigen staining, as well as development of neutralizing antibody responses and changes in milk color and consistency, further confirmed infection in the sows. 

Despite these molecular findings, none of the animals developed overt clinical disease, and respiratory involvement was not noted during the study period.

Collectively, we demonstrate that intramammary exposure results in productive influenza A(H5N1) virus infection in lactating sows despite their vaccination histories, indicating the potential threat of viral spillover into commercial swine populations. The clinically inapparent nature of infection presents a risk of subclinical spread and underscores the importance of expanding viral surveillance to swine.
       (SNIP)
Collectively, this study expands the host and tissue contexts in which contemporary influenza A(H5N1) viruses may threaten agricultural production and public health. The clinically inapparent presentation in sows suggests that observation for overt disease alone may be insufficient to detect infection in swine.

As a common limitation for large-animal studies conducted under BSL-3Ag containment, the small sample size (n = 4 sows) restricts our ability to evaluate animal-to-animal variability or perform robust dose-dependent comparisons.

However, similar patterns of viral RNA shedding, infectious virus recovery, and mammary tissue pathology, as well as viral RNA positivity in piglets, support the conclusion that lactating sows are susceptible to influenza A(H5N1) infection following intramammary exposure. 

Given the role of swine in IAV evolution and reassortment, early detection of influenza A(H5N1) infection in this host population should be a priority for animal and public health preparedness. 


Despite the mounting evidence of the susceptibility of cattle, sheep, goats, and pigs to HPAI H5 - and the continued calls from the scientific community for more aggressive surveillance and testing of livestock (see herehere, here, here, and here) - the world seems content to don blinders and hope for the best.

A dubious strategy, but one that has the advantage of letting us put off the hard decisions until it is too late to do much about them.  

Sunday, July 19, 2026

Front. Vet. Sci: Biosecurity deficiencies in HPAI-affected poultry farms in Korea, 2020/2021–2024/2025 seasons

Biosecurity Violations - Photo Credit MAFRA

#19,254


South Korean farmers, and their agricultural department (MAFRA), have been dealing with outbreaks of HPAI H5 for more than 2 decades, and yet they continue to report major biosecurity lapses leading to large culls.  

In January of 2025, in South Korea: MAFRA Orders Fines For Biosecurity Breaches On Poultry Farms, we looked at a scathing report that found of the 15 infected poultry farms investigated since October 2024, the vast majority have failed to comply with established biosecurity protocols, and that strong punitive action would be taken.

Ten months ago,South Korea's CDC Announced A 19-day, Nationwide, Mock-Training Exercise to Prepare for Zoonotic Influenza, and South Korea's Ministry of Environment issued a new statement on mandatory steps to increase the safety of personnel dealing directly with avian influenza, and to ensure a more coordinated and efficient quarantine response.

And yet, in December of last year (see South Korea: MAFRA Identifies Biosecurity Breaches On HPAI Infected Poultry Farms), we saw the same patterns emerge; including failures to disinfect vehicles, and allowing people to enter farms and barns without protective clothing.

From the report's summary:

Choi Jeong-rok, Director of the Quarantine Policy Bureau of the Ministry of Agriculture, Food and Rural Affairs, said , “ As a result of the epidemiological investigation into poultry farms where highly pathogenic avian influenza occurred this winter , it was confirmed that most farms were not properly following basic quarantine rules.
Therefore , each local government should strictly punish those who violate related regulations and provide repeated education and inspections so that farms can manage quarantine on their farms with a sense of alertness . ”

Late in December MAFRA reported Increased Infectivity & Pathogenicity of This Year's Avian Flu Strains, and warned again on the importance of increasing biosecurity, and on January 5th announced  Special Quarantine Measures Implemented for one Month to Prevent the Spread of HPAI.

In March, in an Investigation Into Biosecurity Lapses on HPAI Affected Poultry Farms, MAFRA reported that of 50 of that year's 53 infected poultry farms, 70% had at least one serious violation.
  • 70%: No disinfection or protective clothing for people entering farms
  • 68%: Vehicles entering/exiting farms not disinfected
  • 66%: Poor overall sanitation management
  • 62%: Workers not using farm-specific clothing/footwear
  • 48%: Inadequate barriers to prevent entry of wild animals
Given the constant warnings, and threats to reduce culling compensation by 50% and heavy fines for non-compliance, achieving and maintaining biosecurity on a working farm is obviously easier said than done. 

Amid reports of greatly increased infectivity of South Korean bird flu strains we also saw a sharp increase in HPAI activity around the globe over the 2025-2026 avian flu season. 

This is obviously not just a South Korean problem, although they have been far more transparent about the challenges of containing avian flu than most other countries.  

All of which brings us to an analysis of biosecurity lapses on South Korean poultry (duck & chicken) farms between 2020/21 and 2024/2025.  While this does not include data from last year's outbreaks, it closely aligns with what we saw reported last winter by MAFRA.

Due to its length and technical nature, I've just posted the abstract and a brief excerpt.  Those involved with raising poultry, or biosecurity on farms, will want to do a deeper dive. 

I'll have a bit more after the break.

Front. Vet. Sci., 16 July 2026
Sec. Veterinary Infectious Diseases
Volume 13 - 2026 | https://doi.org/10.3389/fvets.2026.1863522
Biosecurity deficiencies in HPAI-affected poultry farms in Korea, 2020/2021–2024/2025 seasons
Hachung Yoon * , Kyoungsook Kim , Keesung Hong
Veterinary Epidemiology Division, Animal and Plant Quarantine Agency, Gimcheon, Republic of Korea
 
Abstract

Introduction:

Highly pathogenic avian influenza (HPAI) remains a persistent threat to poultry production systems despite reinforced biosecurity measures. This study aimed to characterize biosecurity deficiencies in HPAI-affected farms in Korea and to identify structured patterns of deficiencies.

Methods:

Outbreak investigation reports from 311 HPAI-affected farms (2020/2021–2024/2025 seasons) were analyzed, yielding 3,172 biosecurity deficiency records classified into 16 categories across three operational domains. Frequency analysis, k-means clustering, and association rule analysis were applied to identify deficiency patterns and co-occurrence structures.

Results:

Wildlife control was the most frequent deficiency (85.9%), followed by operational management (65.9%) and deficiencies related to anteroom biosecurity measures in barns (56.3%). Four distinct farm-level deficiency profiles were identified, with significant differences in cluster membership between chicken and duck farms. Association rule analysis revealed consistent co-occurring deficiency pairs, particularly involving farm-entry measures such as visitor and vehicle disinfection.

Discussion:

These findings indicate that biosecurity deficiencies are not isolated but form structured and interconnected patterns. A system-level approach incorporating targeted, pattern-based biosecurity interventions and risk-based surveillance prioritization may improve the sustainability and effectiveness of HPAI prevention and control in poultry production systems.

        (SNIP)

Together, these findings indicate that biosecurity deficiencies in HPAI-affected farms are structured, sector-specific, and tend to cluster into interpretable farm-level patterns. Recurrent co-occurring deficiency pairs suggest that weaknesses accumulate in consistent combinations, particularly around farm-entry measures. This supports a shift from single-item compliance checks toward integrated, system-level approaches to biosecurity. From a practical perspective, the identified deficiency profiles may support risk-based prioritization of biosecurity interventions according to farm characteristics and dominant vulnerability patterns.
Farms with entrance-focused profiles may benefit from strengthened visitor control and disinfection measures, whereas barn- or management-dominant farms may require improvements in worker practices, equipment handling, and operational oversight. Training and technology-assisted monitoring, including CCTV, may further enhance compliance, particularly for behaviorally demanding procedures (27, 36, 38). Collectively, these findings may help inform more targeted surveillance strategies and adaptive biosecurity policies in poultry production systems.

This study is limited to farms with confirmed HPAI outbreaks, and the identified patterns do not establish direct causality. However, these deficiencies represent conditions that may contribute to disease introduction and spread, and their consistent implementation remains essential for effective HPAI prevention.

        (Continue . . . )

 

We are two, maybe three months away from arrival of the next wave of avian flu in the Northern Hemisphere. Migratory birds that are currently breeding in their high-latitude roosting spots - where they can easily swap viruses - will once again head south in the fall. 

While these 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.

Now is the time for poultry producers - from commercial operations to back-yard hobby farms - to review their biosecurity procedures, and to make necessary adjustments before the fall. 

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 HPAI.

Over the past 18 months we've seen at least 3 U.S. backyard flock owners infected with HPAI H5, resulting in 2 deaths. This is an all-too familiar pattern, which we've seen repeated dozens of times in many other countries.

If battle-tested South Korean farmers are having this much trouble maintaining adequate biosecurity, then it is probably worth reviewing our own practices before the next wave of the virus heads our way. 

Saturday, July 18, 2026

Infection: Severe pneumonia and acute respiratory distress syndrome caused by avian influenza A (H10N3) in a young female: a case report

 

#19,253

Although reporting has been sporadic, since 2021 China has reported at least 7 human infection with LPAI H10N3. The most recent case (Dec 2025) was announced by Hong Kong last February in an cryptic 1-line notice (see below) in their weekly avian flu report. 



In late April the WHO published a brief report where we learned this patient - who worked with poultry - was hospitalized with severe pneumonia, severe acute respiratory distress syndrome (ARDS) and sepsis for roughly 2 weeks before a diagnosis of avian H10 infection was confirmed. 

WHO WPRO reported a 6th case last summer, but as with earlier announcements, details were limited. We continue to see cautionary reports, however, from Chinese researchers on the human health threat from this emerging subtype.

While no deaths have been reported, in nearly every case the patient is described as having symptoms of severe ARDS or pneumonia, often with other complications. 

Today we have a detailed case report on the 4th known case - a 23 year-old female who was infected in December of 2024 - and who ended up being hospitalized for > 3 months.

I've posted the abstract and some excerpts from the report, but you'll want to follow the link to read it in its entirety.

Severe pneumonia and acute respiratory distress syndrome caused by avian influenza A (H10N3) in a young female: a case report

Published: 17 July 2026

Mei Zhao, Qiyun Shi, Lin Zhao, Meng Wang, Jingwen Li, Zhiyi Wan, Tun Ouyang & Yang Yu  

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Abstract

Background

Human infection with avian influenza A (H10N3) is a rare but severe emerging zoonotic disease. To date, only a limited number of cases have been reported, which restricts a comprehensive understanding of its clinical features and public health risks. We report the fourth documented case of human H10N3 infection, which is the first to be identified in a female patient. Additionally, we compared the clinical and genomic characteristics of all four cases.

Case presentation

A 23-year-old female with no prior comorbidities developed severe pneumonia and acute respiratory distress syndrome due to infection with avian influenza A (H10N3) virus. The patient, working in a fresh market with recent training at a slaughterhouse, presented a one-week history of high fever, cough, and dyspnea. Despite initial broad-spectrum antibiotics, her condition rapidly worsened, requiring mechanical ventilation and veno-venous extracorporeal membrane oxygenation (V-V ECMO). Metagenomic next-generation sequencing of bronchoalveolar lavage fluid, confirmed by the Centers for Disease Control and Prevention, identified avian influenza A (H10N3).

Following approximately three months of intensive treatment, the patient recovered and was discharged. Phylogenetic analyses showed that her virus strain was closest to the third human H10N3 case (Kunming, China, 2024). In addition, this strain had a human-adapted substitution (P221) but lacked the G228S substitution in the haemagglutinin protein, suggesting that the latter is not essential for human infection.

Conclusions

This case highlights the potential for severe human infection by the H10N3 virus. It is imperative that surveillance is enhanced in both human and animal populations.

       (SNIP)

A comparative analysis of the four reported human H10N3 infections to date (Table 1) reveals a consistent pattern of severe disease [7,8,9]. All four patients were hospitalized 4–7 days after onset of common respiratory symptoms. The disease generally progresses rapidly, with transfer to the RICU due to ARDS typically occurring 8–10 days after symptom onset (Table 1). Notably, 75% (3/4) of patients required mechanical ventilation or ECMO (Table 1).

 

These data suggest that H10N3 viruses may induce serious, life-threatening disease in humans.
In addition, this patient received prolonged inpatient treatment for approximately 3 months before discharge, significantly longer than the three previously reported H10N3 cases. The extended hospitalization was primarily attributable to numbness and motor dysfunction of the right lower extremity that developed after successful V-V ECMO weaning.
The patient received inpatient rehabilitation for more than two additional months to achieve full functional recovery before discharge. Similar neurological complications were not documented in the three previously reported human H10N3 cases, which explains the marked difference in the length of hospitalization between this case and prior cases.
        (SNIP)

In conclusion, we have presented a case of severe pneumonia and ARDS due to avian influenza virus (H10N3) infection in a 23-year-old female. This case highlights the severe pathogenic potential of the H10N3 subtype in humans. This report emphasizes the need for continued surveillance of avian influenza viruses in both animal and human populations.

        (Continue . . . ) 

While the authors call for `continued surveillance', H10N3 (along with H9N2 and a number of other LPAI viruses), are not considered to be a `reportable' disease in poultry by WOAH. 

Human cases are reportable to WHO, but - as we've seen - case reports are often vague or sometimes delayed for months.  And we've no idea how many cases are missed.

The FAO acknowledges and presents a broad overview of avian flu viruses with zoonotic potential, but no global agency does dedicated tracking of  H10N3, H9N2, and similar LPAI viruses in poultry. 

Instead we rely on a informal patchwork of sporadic national surveillance, independent research projects, and reports of occasional spillovers into humans (see WHO DON: Avian Influenza A(H9N2) - Italy (Ex Senegal)) to try to monitor these subtypes. 

While out attitudes towards these LPAI threats may change over time, hopefully that's not a lesson we'll have to learn the hard way.

Friday, July 17, 2026

H5N1: NZ Reports 2nd Detection (local bird) & Australian Detections Increase to 17

 
Credit Wikipedia

#19,252

Two days after announcing their first detection (in an unspecified ocean-going sea bird), New Zealand reports finding H5N1 in a local bird (a swamp harrier hawk) found in the sparsely populated Wairarapa region on the north island (see map above).

SITUATION UPDATE: 17 July 2026


Response and surveillance work continues to step up in close coordination with industry partners and others after a single kāhu, swamp harrier hawk, found in the Wairarapa, was confirmed to have H5 bird flu (H5N1 avian influenza clade 2.3.4.4b).
  • This is the second bird in New Zealand confirmed to have H5 bird flu, following a single detection in a brown skua seabird found on Petone Beach in Wellington on 15 July. In addition to New Zealand’s continuous bird flu surveillance and testing programme, additional work will include:extra checking of birds at selected sites in the Wairarapa over coming days
  • alongside industry, MPI will offer one-on-one support and advice to poultry and egg operations in Wellington and the Wairarapa
  • establishing a technical advisory group of expert scientists to supplement advice from MPI’s internationally recognised experts.
The Department of Conservation will continue its vaccination programme for 300 core breeding birds from 5 of our most endangered birds – kākāpō, takahē, tūturuatu/shore plover, kakī/black stilt, and kākāriki karaka/orange-fronted parakeet.

There continues to be no detections in poultry.

Chicken and eggs remain safe to eat and bird flu is a very low risk to human health.

Be alert and use good habits to limit the impact of bird flu

Keep your distance. Stay away from sick or dead wildlife. Keep pets away too.

Keep clean. Wash your hands and clean your gear after being outdoors.


You'll find a more extensive press release on New Zealand's Beehive press release website (excerpts below).


 Work on the ground will step up after confirmation today a single Kāhu, swamp harrier hawk, which was found in the Wairarapa, is the second bird in New Zealand confirmed to have H5 bird flu, says Biosecurity Minister Andrew Hoggard and Conservation Minister Tama Potaka.

“While it’s disappointing to find a native bird with H5 bird flu, it’s not unexpected following the confirmation earlier this week of our first case in a single brown skua seabird found at Petone Beach,” says Mr Hoggard. “There has been no detection in poultry.”

“The find shows our continuous bird flu surveillance and testing programme is working well, and as a result, we will step up our actions in response to bird flu in close co-ordination with our industry partners and others.”

Mr Hoggard said that work would include:
  • Extra checking of birds at selected sites in the Wairarapa over coming days.
  • Alongside industry, MPI will offer one-on-one support and advice to poultry and egg operations in Wellington and the Wairarapa.
  • Establishing a technical advisory group of expert scientists to supplement advice from MPI’s internationally recognised experts.
  • The Department of Conservation continues its vaccination programme for 300 core breeding birds from five of our most endangered birds - kākāpō, takahē, tūturuatu/shore plover, kakī/black stilt and kākāriki karaka/orange-fronted parakeet.
“This hawk can go out to the coast - especially in winter to hunt. Hawks can get bird flu by hunting, eating, or scavenging infected birds,” says Mr Hoggard.

“It’s important we continue to work closely with the egg and poultry industry as we have over the past several years preparing for bird flu’s arrival. On-site biosecurity plans and measures are very important for chicken and egg producers, and we will up our work alongside sector groups to provide support and advice.

“While it’s an individual decision for businesses, we support free range farmers taking precautionary action to protect their birds by temporarily housing them while we continue to gather more information about the spread of H5 bird flu.

We will have to learn to live with bird flu as it cannot be eradicated, and overseas experience shows strong biosecurity measures on-farm help.”
       (Continue . . . )

Meanwhile, the number (of reported bird deaths & confirmed cases) in Australia continues to rise, with Western Australia reporting 2 more confirmed cases overnight.

Wild petrel positive for bird flu at Seabird

Media release
 
Two additional cases of H5 bird flu have been confirmed in Western Australia, taking the State's total number of detections to ten.

Last updated: 17 July 2026

Two additional cases of H5 bird flu have been confirmed in Western Australia, taking the State's total number of detections to ten.

Testing at CSIRO’s Australian Centre for Disease Preparedness today confirmed the ‘presumed positive’ detection in a petrel found at Seabird in the Shire of Gingin, and in a previously reported suspect petrel found at Parry Beach in Denmark.

In both cases, testing was unable to sequence the virus to definitively determine the H5 bird flu strain. This is not unexpected, particularly in wildlife samples from decomposed carcasses.

The Department of Primary Industries and Regional Development is taking a precautionary approach and treating these as positive detections based on the species involved, the circumstances of the detection and available evidence.

At this time, there is no evidence of any large-scale deaths in wildlife, nor any evidence of infection in poultry or in our agricultural production system.

There have been more than 1800 wildlife-related reports from WA to the hotline since the first confirmed case on 19 June. Each report is assessed for further investigation or testing based on the likelihood of disease risk.

To date, a total of 130 negative test results has been recorded across the State.

The risk to human health remains low, but people are reminded to avoid handing the animals, record their observations by photo or video and report to the EAD hotline on 1800 675 888.

More information is available on the Australian Government's Bird flu (Avian influenza) website.

While both governments continue to stress that there have been no outbreaks in poultry - or large-scale deaths in wildlife - sadly, H5N1's history suggests both scenarios are highly likely.

Stay tuned. 

Thursday, July 16, 2026

Australia: NSW Confirms 2nd Detection of H5N1 (National ttl=15)

 

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New South Wales has reported its 2nd confirmed H5N1 detection, bringing the nation's total to 15 (WA has at least one suspected case with results pending).  

As we discussed yesterday, the backlog of reported bird death reports is growing, and so confirmed cases likely significantly under represent the true incidence across the country. 

This brief update from Australia's Department of Agriculture. 

H5 bird flu testing updates

16 July 2026

Attributable to the Australian Chief Veterinary Officer, Dr Beth Cookson:

Testing at CSIRO’s Australian Centre for Disease Preparedness has confirmed a further positive detection of H5 high pathogenicity avian influenza (bird flu) in a petrel, found at Hawks Nest, New South Wales.

There have now been 15 confirmed or presumed positive detections of H5 bird flu in Australia.  

All of these have been individual wild seabirds found in coastal locations. All but one have been wild migratory seabirds.

There remains no evidence of any mass mortality events and there are no detections in poultry or in our agricultural production system.

The risk to human health remains low.