tetano
Editor, Senior Moderator
Npj Viruses
. 2025 Jul 17;3(1):57.
doi: 10.1038/s44298-025-00141-w. Detection of avian influenza virus in surface waters using passive samplers
Madison T Gouthro[SUP] 1 [/SUP], Emalie K Hayes[SUP] 2 [/SUP], Taylor Prest[SUP] 1 [/SUP], Graham A Gagnon[SUP] 1 [/SUP]
Affiliations
Avian influenza (AIV) remains a global concern not only for humans as a pandemic threat but pose a risk to poultry, wildlife, and livestock. The detection of AIV in the environment traditionally has relied on reactive surveillance, limiting proactive response. This study assessed the detection of Pan-influenza A virus (Pan-FluA) and hemagglutinin subtype H5 genes in surface water using novel passive samplers and molecular analyses. Pan-FluA RNA was detected at concentrations from 2.1 × 10[SUP]5[/SUP] to 5.6 × 10[SUP]12[/SUP] copies sampler[SUP]-1[/SUP] and H5 RNA at concentrations from 2.2 × 10[SUP]4[/SUP] to 1.8 × 10[SUP]11[/SUP] copies sampler[SUP]-1[/SUP]. Detections aligned with fall migration and waterfowl activity but also underscored the importance of monitoring interface zones influenced by wildlife, agriculture, and wastewater. Among other hemagglutinin subtypes detected, sequence analyses confirmed the presence of H5 lineages consistent with those reported for H5N1, H5N6, and H5N8. These findings ultimately demonstrate the potential of surface water surveillance as a scalable strategy for AIV detection.
. 2025 Jul 17;3(1):57.
doi: 10.1038/s44298-025-00141-w. Detection of avian influenza virus in surface waters using passive samplers
Madison T Gouthro[SUP] 1 [/SUP], Emalie K Hayes[SUP] 2 [/SUP], Taylor Prest[SUP] 1 [/SUP], Graham A Gagnon[SUP] 1 [/SUP]
Affiliations
- PMID: 40676192
- DOI: 10.1038/s44298-025-00141-w
Avian influenza (AIV) remains a global concern not only for humans as a pandemic threat but pose a risk to poultry, wildlife, and livestock. The detection of AIV in the environment traditionally has relied on reactive surveillance, limiting proactive response. This study assessed the detection of Pan-influenza A virus (Pan-FluA) and hemagglutinin subtype H5 genes in surface water using novel passive samplers and molecular analyses. Pan-FluA RNA was detected at concentrations from 2.1 × 10[SUP]5[/SUP] to 5.6 × 10[SUP]12[/SUP] copies sampler[SUP]-1[/SUP] and H5 RNA at concentrations from 2.2 × 10[SUP]4[/SUP] to 1.8 × 10[SUP]11[/SUP] copies sampler[SUP]-1[/SUP]. Detections aligned with fall migration and waterfowl activity but also underscored the importance of monitoring interface zones influenced by wildlife, agriculture, and wastewater. Among other hemagglutinin subtypes detected, sequence analyses confirmed the presence of H5 lineages consistent with those reported for H5N1, H5N6, and H5N8. These findings ultimately demonstrate the potential of surface water surveillance as a scalable strategy for AIV detection.