Friday, July 31, 2026

WHO WPRO Reporting 4 More H9N2 Cases on Chinese Mainland

 

#19,271

Three days ago we looked at an HK report on 3 recent human infections with avian H9N2 on the Chinese Mainland (Guangxi Province, Jiangsu Province, Guangdong Province), all reported in late June.

Today, the WHO's WPRO (Western Pacific Regional Office) reports 4 more human infections, all occurring in the first half of July, making 7 H9N2 cases reported by China over a period of roughly 3 weeks. 

We've often discussed the difficulty in detecting cases, since most H9N2 infections are mild or moderate, and clinically indistinguishable from seasonal flu, meaning we've no idea how many cases we may be missing. 

As the following chart illustrates, case counts have been rising steadily in recent years, although it isn't known whether this trend is due to increased spillover of H9N2 to humans, or better surveillance. 

EFSA/ECDC Chart - Current To June 4th, 2026

With the addition of at least 9 additional cases to this chart, 2026 (n=22) appears on track to meet or exceed last year's record of 38 cases.  

The 7 cases from the last 2 reports are spread across 6 provinces, and most are said to have either direct or potentially indirect exposure to poultry. Of these seven cases, three adult patients reportedly had (unspecified) comorbidities and were hospitalized, while the four pediatric cases had mild illness. 

First the WHO WPRO update, after which I'll have a bit more on H9N2. 

Human infection with avian influenza A(H9N2) virus

From 24 to 30 July 2026, four new cases of human infection with avian influenza A(H9N2) virus were reported to WHO in the Western Pacific Region. All four cases were from China. The cases included;

  • a 72-year-old female from Jiangxi Province with symptom onset on 5 July 2026;

  • a 12-year-old male from Jiangsu Province with symptom onset on 6 July 2026;

  • a 3-year-old female from Gansu Province with symptomonset on 11 July 2026;

  • and a 58-year-old female from Yunnan Province with symptom onset on 13 July 2026. 

The four cases reported were geographically distinct from each other. One case reported direct exposure to live-poultry, while three had potential exposure related to live-poultry stalls or wet market visits. Two cases with underlying chronic respiratory disease conditions were hospitalized and subsequently discharged. The remaining two cases experienced mild illness, were not hospitalized and had recovered at the time of reporting.

Since 2015, a total of 177 cases of human infection with avian influenza A(H9N2), including two deaths (both with underlying conditions), have been reported to WHO in the Western Pacific Region. Of these, 174 were reported from China, two were from Cambodia, and one was from Viet Nam.

Most human infections with avian influenza A(H9N2) have been associated with exposure to infected poultry or contaminated poultry environments, and the majority of cases have been mild. Sporadic human infections continue to be expected in areas where H9N2 viruses circulate in poultry populations. Current evidence indicates that H9N2 viruses have not acquired the ability for sustained human-to-human transmission, and the risk of further community-level spread remains low. 

Despite being clearly zoonotic - LPAI H9N2 is considered a `non-reportable' disease in poultry or wild birds by WOAH (see Terrestrial Animal Code). As a result, there are huge gaps in surveillance and reporting around the world. 

At the same time we've seen a growing number of studies - mostly out of Asia - warning of its growing adaptation to mammalian hosts (see EM&I: Enhanced Replication of a Contemporary Avian Influenza A H9N2 Virus in Human Respiratory Organoids).

Last October the Chinese CDC Weekly published a detailed report (see Epidemiological and Genetic Characterization of Three H9N2 Viruses Causing Human Infections — Changsha City, Hunan Province, China, April 2025) which found:

Three children infected with H9N2 AIV were identified in Changsha in April 2025, and no epidemiological links were found between these mild and sporadic cases. Genetic analysis showed that the H9N2 viruses had enhanced binding ability to upper respiratory tract receptors, particularly the α2,6-sialic acid receptors.

The report goes on describe some of the notable HA mutations suggesting enhanced mammalian adaptation:

Analysis of receptor-binding sites showed that the HA proteins had mutations at amino acid positions H191N, A198V, Q226L, and Q234L, which potentially enhanced the binding ability of the virus to the receptor (5-6).

While there is still no evidence of sustained or efficient human-to-human transmission of H9N2, the virus remains poorly controlled in poultry, and  appears on a path towards greater mammalian adaptation. 

Our own CDC lists two lineages (A(H9N2) G1 and A(H9N2) Y280) as having at least some pandemic potential, and several candidate vaccines have been developed.

In terms of risk of emergence, the H9N2
Y280 lineage is ranked higher than H5N1

Whether H9N2 has true pandemic potential is unknown, but between acquiring new mammalian adaptations, and the ease with which it appears to be spilling over into humans, this is definitely a virus worth keeping our eye on. 

Thursday, July 30, 2026

Australia: CSIRO Reports 4 H5 Positive Crested Tern Samples from Kangaroo Island

 
Credit Wikipedia

#19,270


No sooner has I posted my last blog when the following statement was posted on the Australian government website:

30 July 2026
Attributable to Australian Chief Veterinary Officer, Dr Beth Cookson:

Testing at CSIRO’s Australian Centre for Disease Preparedness (ACDP) has returned four positive results in crested terns, from Kangaroo Island, South Australia.

There have now been 33 confirmed or presumed positive detections of H5 bird flu in Australia.

All of these have been wild seabirds found in coastal locations.

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.


While not particularly surprising given its proximity to the other SA confirmed seabirds, this is a concern because Kangaroo Island is home to a number of marine mammals which are known to be susceptible to avian flu, including:

  • Australian sea lion.
  • Australian fur seal.
  • New Zealand fur seal.
  • Bottlenose dolphin and common dolphin. 

Drone surveys revealed mass mortality in southern elephant seals, with 8,573 pups (62%) recorded dead across Heard Island by the final surveys. Mortality increased at an average rate of 5.6% per day in a subset of harems, and the highest observed mortality in a harem was 97%. Based on the average (76%) mortality in the final surveys, total estimated pup mortality at Heard Island was 13,359 (from a total population of 17,364 pups), though this may be an underestimate as mortality was ongoing at this time. 

HPAI was detected in six of nine species tested and, we suspect, led to elevated mortality in king and gentoo penguins.


While there is currently no evidence of spillover into Kangaroo Island's marine or terrestrial mammalian population, this is another worrisome milestone for HPAI as it spreads across Oceania. 

Australia: H5N1 Reaches Victoria - SA `Suspect' Count Rises (n=24)

 


#19,269

A few hours ago Victoria announced their first H5N1 detection, once again in a greater crested tern, this time found in Portland. We've two announcements, first from Agriculture Victoria, and second by Australian Chief Veterinary Officer, Dr Beth Cookson announcing the confirmation from CSIRO. 

H5N1 avian influenza strain detected in Victoria

30 July 2026

The high pathogenicity avian influenza H5N1 strain (H5 bird flu) has been detected in Victoria.

Victoria’s Chief Veterinary Officer Dr Graeme Cooke said this detection is a result of Australia’s response to H5 bird flu, with the Victorian Government undertaking surveillance for the disease and working closely with the Commonwealth, interstate jurisdictions and industry partners.

Preliminary testing has indicated H5 bird flu in a single greater crested tern found in Portland. Further genetic testing is underway at CSIRO’s Australian Centre for Disease Preparedness at Geelong to formally confirm this result.’ Dr Cooke said.

‘This follows confirmation of the disease in seabirds in Western Australia, South Australia, New South Wales and Queensland, and the national decision that H5 bird flu is no longer technically feasible to eradicate in wildlife.’

‘Following weeks of enhanced readiness, we have now enacted Victoria’s State Emergency Animal Disease Response Plan. Based on international experience, this H5 variant differs from previous strains and has been known to cause large numbers of deaths in wild birds and some mammals.’

‘Our plans aim to limit impacts where possible particularly on our most threatened species, while also supporting our farmers and reducing risk to domestic and commercial poultry.

‘We need Victorians to avoid contact with sick or dead wildlife, record what they see and report it. Early reporting gives us the best chance to reduce the impacts of the disease,’ Dr Cooke said.

        (Continue . . . )

 

30 July 2026

Attributable to Australian Chief Veterinary Officer, Dr Beth Cookson:

Testing at CSIRO’s Australian Centre for Disease Preparedness (ACDP) has confirmed H5 bird flu in a greater crested tern, found in Portland in Victoria.

This is the first case in the state of Victoria.

There have now been 29 confirmed or presumed positive detections of H5 bird flu in Australia.

All of these have been wild seabirds found in coastal locations.

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

Meanwhile, South Australia has confirmed a 15th case (a Giant Petrel), and reports an additional 24 suspect cases are pending confirmation by CSIRO.

Current situation


South Australia’s first confirmed detection of H5 bird flu was in a wild migratory bird (southern giant petrel) on Wednesday, 24 June at Knights Beach at Port Elliot on the Fleurieu Peninsula.

Further confirmed detections include a giant petrel (8 July at Hardwicke Bay, Yorke Peninsula); a southern giant petrel (10 July at Emu Bay, Kangaroo Island); a northern giant petrel (10 July at Port Vincent, Yorke Peninsula); three greater crested terns (10 July at Robe, Limestone Coast; 26 July at Semaphore, metro Adelaide; and 26 July at Robe, Limestone Coast); seven greater crested terns (28 July at Cape Jaffa, Port MacDonnell and Southend, Lower South East); and a giant petrel (30 July at Port Lincoln, Eyre Peninsula).

A further 24 suspected H5 bird flu detections are undergoing further confirmatory testing at the Australian Centre for Disease Preparedness in Victoria.

The strain of virus is consistent with the strain detected in the Southern Indian Ocean Sub-Antarctic Territories, including Heard Island.

This strain has not been detected in poultry and has not become established in any part of Australia.

Up-to-date national information is available at birdflu.gov.au.

Although the official numbers remain reassuring low (n=29), they undoubtedly represent only a small fraction of actual H5 burden on wildlife in Australia.  Two weeks ago, we looked at the growing gap between reported events, prioritized and investigated cases, and lab testing in Western Australia. 

 Graphic generated by Gemini

I've not seen an update from WA since July 17th  - where total reports then exceeded 1,800 - and sadly, other states have not provided this sort of granular detail. 

But it is a fairly safe assumption that similar backlogs exist around the nation. 

Obviously, no surveillance and testing program can hope to capture more than a small fraction of the HPAI activity in birds or animals in the wild.  At best, it can give us some idea as to the spread, intensity, and host range of HPAI H5 across the continent. 

And right now, based on available data, H5N1 appears to be making significant inroads down under.  

Wednesday, July 29, 2026

EID Journal Dispatch: Seroprevalence of Influenza A(H5N1) Virus in Domestic Cats at Epicenter of Dairy Cattle Outbreaks, California, USA, 2024–2026

 

Seropositive cats around HPAI Infected Dairy Farm

#19,268


We've known for more than 2 decades that cats - both large and small - are susceptible to HPAI H5 infection (see 2004 CIDRAP Report) and have seen scattered reports over the years (see 2015's HPAI H5: Catch As Cats Can).

Until relatively recently, those reports were fairly rare, and mainly came from zoo animals fed on a diet of raw chicken. But since the emergence of a new, more transmissible clade 2.3.4.4b H5N1 virus in 2021, the number of companion animals (and other mammals) reported to be infected has risen sharply.

While undoubtedly underreported, more than 20% of all of the mammalian wildlife detections reported in the United States  (180 of 813 USDA reports) over the past 4 years have been among felines. 


Many have been reported in and around dairy and poultry farms (see EID Journal: HPAI A(H5N1) Clade 2.3.4.4b Virus Infection in Domestic Dairy Cattle and Cats, United States, 2024).

While many cats infected with HPAI sicken and die, others - based on seroprevalence studies (see Eurosurveillance: (HPAI) H5 virus Exposure in Domestic & Rural Stray Cats, the Netherlands, October 2020 to June 2023) - are likely only mildly affected and survive.

Previously, we've seen evidence of cattle-to-bird-to-cat transmission of avian flu, large outbreaks in animal shelters suggesting cat-to-cat transmission (H7N2), and limited evidence of cat-to-human transmission (see here and here). 

All of which brings us to a new dispatch, published yesterday in the EID Journal, which reports a 25% seropositivity rate among (n=12) cats sampled within 2 km of infected dairy farms, while no cats were seropositive further away (n=61).

While this is just one small, geographically limited, study the authors state: "Proximity to dairy farms in counties experiencing outbreaks may be a risk factor for H5N1 spillover to indoor and outdoor domestic cats."

I've only posted the highlights, follow the link to read the report in its entirety.


Volume 32, Number 9—September 2026
Dispatch
Seroprevalence of Influenza A(H5N1) Virus in Domestic Cats at Epicenter of Dairy Cattle Outbreaks, California, USA, 2024–2026
 
Ian G. Bemis, Ismaila Shittu, Jacob F. Gomez, Esther A. Fadaka, Sofia Perez, Gregory C. Gray, and Kristen K. Coleman 

Abstract

We conducted a serologic study of domestic cats near the epicenter of the dairy cattle outbreaks of influenza A(H5N1) in California, USA. Three of the 12 cats sampled within 2 km of farms had neutralizing antibodies against H5N1 virus. Proximity to dairy farms was a statistically significant risk factor for seropositivity.

(SNIP)

 Although several US dairy industry–related outbreaks of H5N1 among cats have been reported, the resulting seroprevalence of H5N1 virus among domestic cats near affected dairy farms is unknown. Therefore, we performed a serosurvey of domestic cats at the epicenter of the 2024–2025 dairy cattle outbreaks in California’s Central Valley.

(SNIP)

During December 2024–March 2026, we collected 73 serum samples from indoor and outdoor cats (Figure 1) within 9.7 km (6 miles) of >1 dairy farms (mean 4.7 km [2.9 miles]). Among the 73 cats, 3 tested positive for both influenza A virus nucleoprotein antibodies and neutralizing antibodies against H5 clade 2.3.4.4b. One indoor-only and 1 outdoor feral cat had neutralizing antibody titers of 1:160, and 1 indoor-only cat had a titer of 1:640, indicating strong positivity and 100% agreement between the ELISA and microneutralization assay. All negative samples had titers of <1:20.
 
Three (25%) of the 12 cats sampled within 2 km (1.24 miles) of dairy farms were seropositive for H5N1 virus (Figure 2), yielding an overall seropositivity rate of 4.1% for all surveyed cats. Seropositive cats had a mean distance to the nearest dairy farm of 1.34 km (0.8 miles), compared with 4.83 km (3 miles) for seronegative cats (p = 0.014) (Figure 3). Average age of surveyed cats was ≈1.6 years (range ≈3 months–4.9 years); 60% were female and 40% male. Age and sex were not significantly different for seropositive and seronegative cats. Of the 73 cats surveyed, 68 (93%) were in rural areas and 5 (7%) in urban areas. All seropositive cats were in rural areas. No indoor cats were fed raw meat or dairy.

       (SNIP)

Conclusions

Avian influenza A(H5N1) clade 2.3.4.4b is an emerging threat to domestic cats and public health. We report a 25% seropositivity rate for the virus among domestic cats within 2 km (1.2 miles) of dairy farms in the epicenter of the H5N1 cattle outbreaks in California during 2024–2026. Proximity to dairy farms in counties experiencing outbreaks may be a risk factor for H5N1 spillover to indoor and outdoor domestic cats. Our research provides insight into potential H5N1 virus sources and transmission routes among domestic cats in the United States, for which data are scarce. Our results may help refine public health guidance on the prevention of avian influenza in cats and set the stage for future studies.

Although only 3 seropositive cats were identified in our study, their closer proximity to dairy farms compared with seronegative cats is an important epidemiologic finding. 

        (SNIP) 

Our study highlights a critical gap in companion animal surveillance and might be helpful to health agencies as they seek approaches to mitigating this emerging infectious disease threat. Proximity to dairy farms was a risk factor for H5N1 spillover to cats in our study. However, cattle-to-cat transmission of H5N1 virus is a relatively new phenomenon, and most cat infections reported in the literature over the past 20 years have been from bird-to-cat transmission (1). To assess the in situ risk for human-adapted reassortant influenza viruses emerging in cats, future work is needed to characterize the seroprevalence of human influenza viruses in cats and avian influenza viruses in cats near outbreaks in poultry and wild birds. Cat surveillance studies also could provide insight into nearby H5N1 outbreaks that have yet to be discovered, fully investigated, or contained.

        (Continue. . . )
 

Australia Confirms `Some Local Spread' of H5N1 - CSIRO Testing An Additional 11 Samples From SA

 

" I can advise that today the consultative committee on animal diseases, emergency animal diseases met and has agreed based on testing and sequencing by the CSRO lab that some local transmission has occurred between a number of greater crested terns that are resident in South Australia.

While there remains no evidence of any mass mortalities at this point in time, we do expect with this local transmission that there will be further detections in Australian wildlife." -  From Transcript of remarks by Agriculture Minister Julie Collins

#19,267

Overnight South Australia updated their avian flu web portal, announcing that another 11 presumed positive samples have been sent to CSIRO for confirmation and genetic testing.  

Current situation

South Australia’s first confirmed detection of H5 bird flu was in a wild migratory bird (southern giant petrel) on Wednesday, 24 June at Knights Beach at Port Elliot on the Fleurieu Peninsula.

Further confirmed detections include a giant petrel (8 July at Hardwicke Bay, Yorke Peninsula); a southern giant petrel (10 July at Emu Bay, Kangaroo Island); a northern giant petrel (10 July at Port Vincent, Yorke Peninsula); three greater crested terns (10 July at Robe, Limestone Coast; 26 July at Semaphore, metro Adelaide; and 26 July at Robe, Limestone Coast); and seven greater crested terns (28 July at Cape Jaffa, Port MacDonnell and Southend, Lower South East).

A further 11 suspected H5 bird flu detections are undergoing further confirmatory testing at the Australian Centre for Disease Preparedness in Victoria.

The strain of virus is consistent with the strain detected in the Southern Indian Ocean Sub-Antarctic Territories, including Heard Island.

This strain has not been detected in poultry and has not become established in any part of Australia.

Up-to-date national information is available at birdflu.gov.au .

This comes just 1 day after CSIRO confirmed 7 new cases in local seabirds from the state's southeast Limestone Coast.  The results of those tests also strongly suggest local transmission of the virus has occurred among native birds. 

Although disappointing, none of this is particularly surprising. 

The history with HPAI H5 - particularly since the emergence and subsequent evolution of the 2.3.4.4x clade - has been that it travels well in migratory birds, and that when it reaches new territories, it often finds suitable native hosts.

While the situation in Australia continues to evolve, so far there are no reports of spillovers into poultry. 

On Monday I shared an X/Twitter post by Professor Raina Macintyre showing the recent H5N1 detections overlaid on a map of Australia's poultry production regions.

Yesterday, the above mentioned data was published in a preprint on bioRxiv.



HPAI H5N1 risk in Australia: a model for the prediction of poultry outbreaks
Pan Zhang, Samsung Lim, Ashley Quigley, C Raina MacIntyre
doi: https://doi.org/10.64898/2026.07.27.740638
This article is a preprint and has not been certified by peer review  

Preview PDF

Abstract

The panzootic highly pathogenic avian influenza (HPAI) H5N1 virus has now been detected on the Australian mainland, with incursions from the sub-Antarctic region posing an increasing threat to domestic wildlife and poultry populations. Our study aimed to predict the risk of HPAI H5N1 poultry outbreaks across Australia at the local government area (LGA) level using a range of influential risk factors.

We first used a Maximum Entropy (MaxEnt) model to estimate the environmental suitability for HPAI H5N1 occurrence across Australia. The resulting suitability layer was then integrated with five additional predictor layers, including abundance data for two Southern Ocean wild birds, one of which has introduced HPAI H5N1 into Australia; abundance data for 28 native Australian wild birds; native bird flyways across Australia; Australian chicken density; and poultry farm density. The six layers were aggregated and averaged to generate an HPAI H5N1 risk map for poultry outbreaks across Australian LGAs.

Although most incursions have occurred in Western Australia (WA) and South Australia (SA), we identified New South Wales (NSW) and Victoria (VIC) as having the highest predicted risk of HPAI H5N1 poultry outbreaks. Additional high-risk areas were identified in WA, SA, and Tasmania (TAS).

In contrast, the Northern Territory (NT) and large parts of Queensland (QLD), WA, and SA were predicted to be at low risk. These findings provide a spatially explicit framework to support targeted surveillance, preparedness, and biosecurity measures aimed at mitigating the impact of future HPAI H5N1 outbreaks in Australian poultry.

The Australian government has provided a number of resources for both commercial and backyard poultry producers to help improve their biosecurity: 

Biosecurity manuals

Watch

Tuesday, July 28, 2026

HK CHP Reports 3 H9N2 Cases On Mainland

 

#19,266

Although it received brief mention (see below) in the July 17th WPRO avian flu update, Hong Kong's CHP acknowledged 3 recent H9N2 cases in their weekly avian flu report today.  

As usual, details are scant, but we get a little more from the following WHO WPRO report:

Human infection with avian influenza A(H9N2) virus

From 10 to 16 July 2026, three new cases of human infection with avian influenza A(H9N2) virus were reported to WHO in the Western Pacific Region. All three cases were from China. 

The first case is a 4-year-old male from Guangxi Province, with symptom onset on 26 June 2026. The second case is a 4-year-old male from Jiangsu Province, with symptom onset on 22 June 2026. The third case is a 44-year-old male from Guangdong Province, with symptom onset on 26 June 2026. 

All three cases had exposure to live poultry. The first and second cases had mild symptoms and now recovered; the third case had underlying comorbidities and is curently receiving treatment in the intensive care unit.

Since 2015, a total of 173 cases of human infection with avian influenza A(H9N2), including two deaths(both with underlying conditions), have been reported to WHO in the Western Pacific Region. Of these,170 were reported from China, two were from Cambodia, and one was from Viet Nam.


While most human H9N2 cases have been reported out of China (see below), this year Europe saw its first (imported) human infection with H9N2 in Italy (see WHO DON: Avian Influenza A(H9N2) - Italy (Ex Senegal)).


It is assumed that most cases go unreported, since human infections tend to be mild or moderate (but occasionally severe), and very rarely are non-hospitalized patients tested for novel flu. 

Although there is currently no evidence of sustained or efficient human-to-human transmission of H9N2, the virus remains poorly controlled in poultry, and appears on a path towards greater mammalian adaptation.

While trying to predict the source of the next influenza pandemic is a mug's game, H9N2 shows up twice the top 10 zoonotic influenza A viruses the CDC has pegged as having at least some pandemic potential, with the Y280 lineage having a higher emergence score than H5N1.


Given that we've already seen 2 modern influenza pandemics (1957 & 1968) caused by avian viruses spilling over from birds to humans in China, H9N2's continued evolution and spread is very much worthy of our attention.