Mary Wilson
Well-known member
worobey
2
1d
Due to length constraints on virological.org 9 posts, we are splitting this report into two parts that should be read as a single report. This is Part 1, containing Background, Data, Methods, and Findings sections 1 through 5. See Part 2 for Findings sections 6 through 9, Concluding remarks, Acknowledgements, and References.
Michael Worobey, University of Arizona, Tucson, AZ 85705, USA
Karthik Gangavarapu, Department of Immunology and Microbiology, The Scripps Research Institute, La Jolla, CA, USA
Jonathan E. Pekar, Department of Medicine, University of California San Diego, La Jolla, CA, 92093, USA
Jeffrey B. Joy, Department of Medicine, University of British Columbia, Vancouver, BC, Canada
Louise Moncla, University of Pennsylvania, PA 19104, USA
Moritz U. G. Kraemer, Department of Biology & Pandemic Sciences Institute, University of Oxford, Oxford, UK
Gytis Dudas, Institute of Biotechnology, Life Sciences Center, Vilnius University, Vilnius, Lithuania
Daniel Goldhill, Department of Pathobiology and Population Sciences, Royal Veterinary College, London, UK.
Christopher Ruis, VPD Heart & Lung Research Institute, Department of Medicine, University of Cambridge, Cambridge, UK
Lorena Malpica Serrano, University of Arizona, Tucson, AZ 85705, USA
Xiang Ji, Department of Mathematics, Tulane University, New Orleans, LA 70118, USA
Kristian G. Andersen, Department of Immunology and Microbiology, The Scripps Research Institute, La Jolla, CA, USA
Joel O. Wertheim, Department of Medicine, University of California San Diego, La Jolla, CA, 92093, USA
Philippe Lemey, Department of Microbiology, Immunology and Transplantation, Rega Institute, KU Leuven, Leuven, Belgium
Marc A Suchard, Department of Biostatistics, University of California, Los Angeles, Los Angeles, CA 90095, USA
Angela L. Rasmussen, Vaccine and Infectious Disease Organization, University of Saskatchewan, Saskatoon, SK, Canada S7N 5E3
Meera Chand, UK Health Security Agency, London UK
Natalie Groves, UK Health Security Agency, London UK
Oliver G. Pybus, (1) Department of Pathobiology and Population Sciences, Royal Veterinary College, London, UK (2) Department of Biology & Pandemic Sciences Institute, University of Oxford, Oxford, UK
Thomas P. Peacock, The Pirbright Institute, Woking, UK, GU24 0NF; Department of Infectious Disease, Imperial College London, UK, W2 1PG
Andrew Rambaut, Institute of Ecology and Evolution, University of Edinburgh, Edinburgh, UK
Martha I. Nelson, National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20892
Background
During the winter of 2020-2021, a new genotype of highly-pathogenic (HP) H5N1 avian influenza A virus emerged in Europe, comprising a reassortant between the epizootic HP clade 2.3.4.4b H5N8 and local low pathogenicity wildfowl strains. This new genotype caused record levels of infections in farmed poultry throughout Europe and quickly traveled, via waterfowl flyways, into North America, Africa and East Asia (1–3) 1. In following seasons, this panzootic genotype underwent further reassortment with local low pathogenicity avian strains from waterfowl or seabirds - in Europe, North America and beyond (2, 4, 5) 1, generating a diverse range of genotypes. One of these North American reassortant genotypes then entered South America (6) 1, and most recently, Antarctica (7) 1.
This panzootic H5N1 lineage, and its descendent reassortant genotypes, has shown an unusually high propensity to infect mammals, particularly those of the order Carnivora. There have been a large number of reports of infections in domestic cats (8) 2, wild and farmed foxes (9), farmed mink (10), and wild pinnipeds (6) 1. Reported disease in these species is severe, often comprising neurological clinical signs, respiratory distress and death. During mammalian infections the panzootic genotypes very quickly gain mammalian adaptations in their polymerase genes, often within a single mammalian infection (11) 1. Furthermore there is some evidence of limited or even sustained mammal-to-mammal transmission, particularly in mink farm outbreaks (9, 10) 3, and among sea lions and fur seals in South America (6, 12).
However, the number and frequency of independent bird-to-mammal cross-species transmission remains highly uncertain due to the comparatively low level of field and genomic surveillance of the virus in wild birds. Furthermore, the mode of transmission in these events is unclear with one study showing that the strain affecting pinnipeds in South America was able to transmit between co-housed ferrets, but did not exhibit respiratory transmission (13) 3.
Most recently a widespread outbreak of H5N1 has been detected in the USA in dairy cattle (14–16) 4. Cattle have not previously been described as being an enzootic host for influenza A viruses, although there is some limited serological evidence they may become infected by human seasonal influenza (17)and are susceptible to H5N1 infection under experimental conditions, although they do not develop significant clinical disease (18). However, cattle do have an endemic influenza virus, Influenza D virus, which is a component of bovine respiratory disease complex (19). This current bovine H5N1 outbreak appears to be characterized by reduced milk production, severe mastitis, and mild respiratory disease, though the full range of its severity remains uncertain.
Data
In a separate post 10, we describe our efforts to assemble H5N1 consensus genomes from raw sequence read data submitted to SRA by USDA (239 samples, primarily cattle but also several additional species, deposited in BioProject PRJNA1102327 2).
We also collated metadata included in BioProject PRJNA1102327 2, including host species. Both our genome assemblies/consensus sequences, and a table of metadata associated with them, are available from our public GitHub repository (https://github.com/andersen-lab/avian-influenza. 5)
Notably, key metadata required for phylodynamic and phylogeographic inference related to the bovine H5N1 outbreak (date of sampling and geographic location more specific than country) were not included in BioProject PRJNA1102327 2. We accessed information in which US state samples were collected from and on which date for 152 out of the 239 samples (20) 5, and included that in our table of metadata (21) 3 and our analyses.
Additionally, we included 4 H5N1 viral genome sequences sampled in Texas in April (14) 1 and deposited on BioProject PRJNA1092030 and three additional genomes sampled in Ohio in April shared with us by Andrew Bowman, Jim Lowe and Richard Webby. We combined this dataset with all complete North American 2.3.4.4b clade genome sequences available on GISAID from 2023-01-01 and later. These included genomes collected in Texas in dairy cattle, wild birds, domestic cats, and one human (A/Texas/37/2024(H5N1)) from 2024-03-10 onwards (14) 1. GISAID acknowledgement table is provided (see below).
Resulting alignments are available at avian-influenza/alignments at master · andersen-lab/avian-influenza · GitHub 3. We are continuing to update this data set as new sequence reads appear on SRA, new genomic sequences appear on GenBank or GISAID, and new metadata becomes available. ...
https://virological.org/t/prelimina...-virus-outbreak-in-u-s-cattle-part-1-of-2/970
2
1d
Due to length constraints on virological.org 9 posts, we are splitting this report into two parts that should be read as a single report. This is Part 1, containing Background, Data, Methods, and Findings sections 1 through 5. See Part 2 for Findings sections 6 through 9, Concluding remarks, Acknowledgements, and References.
Michael Worobey, University of Arizona, Tucson, AZ 85705, USA
Karthik Gangavarapu, Department of Immunology and Microbiology, The Scripps Research Institute, La Jolla, CA, USA
Jonathan E. Pekar, Department of Medicine, University of California San Diego, La Jolla, CA, 92093, USA
Jeffrey B. Joy, Department of Medicine, University of British Columbia, Vancouver, BC, Canada
Louise Moncla, University of Pennsylvania, PA 19104, USA
Moritz U. G. Kraemer, Department of Biology & Pandemic Sciences Institute, University of Oxford, Oxford, UK
Gytis Dudas, Institute of Biotechnology, Life Sciences Center, Vilnius University, Vilnius, Lithuania
Daniel Goldhill, Department of Pathobiology and Population Sciences, Royal Veterinary College, London, UK.
Christopher Ruis, VPD Heart & Lung Research Institute, Department of Medicine, University of Cambridge, Cambridge, UK
Lorena Malpica Serrano, University of Arizona, Tucson, AZ 85705, USA
Xiang Ji, Department of Mathematics, Tulane University, New Orleans, LA 70118, USA
Kristian G. Andersen, Department of Immunology and Microbiology, The Scripps Research Institute, La Jolla, CA, USA
Joel O. Wertheim, Department of Medicine, University of California San Diego, La Jolla, CA, 92093, USA
Philippe Lemey, Department of Microbiology, Immunology and Transplantation, Rega Institute, KU Leuven, Leuven, Belgium
Marc A Suchard, Department of Biostatistics, University of California, Los Angeles, Los Angeles, CA 90095, USA
Angela L. Rasmussen, Vaccine and Infectious Disease Organization, University of Saskatchewan, Saskatoon, SK, Canada S7N 5E3
Meera Chand, UK Health Security Agency, London UK
Natalie Groves, UK Health Security Agency, London UK
Oliver G. Pybus, (1) Department of Pathobiology and Population Sciences, Royal Veterinary College, London, UK (2) Department of Biology & Pandemic Sciences Institute, University of Oxford, Oxford, UK
Thomas P. Peacock, The Pirbright Institute, Woking, UK, GU24 0NF; Department of Infectious Disease, Imperial College London, UK, W2 1PG
Andrew Rambaut, Institute of Ecology and Evolution, University of Edinburgh, Edinburgh, UK
Martha I. Nelson, National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20892
Background
During the winter of 2020-2021, a new genotype of highly-pathogenic (HP) H5N1 avian influenza A virus emerged in Europe, comprising a reassortant between the epizootic HP clade 2.3.4.4b H5N8 and local low pathogenicity wildfowl strains. This new genotype caused record levels of infections in farmed poultry throughout Europe and quickly traveled, via waterfowl flyways, into North America, Africa and East Asia (1–3) 1. In following seasons, this panzootic genotype underwent further reassortment with local low pathogenicity avian strains from waterfowl or seabirds - in Europe, North America and beyond (2, 4, 5) 1, generating a diverse range of genotypes. One of these North American reassortant genotypes then entered South America (6) 1, and most recently, Antarctica (7) 1.
This panzootic H5N1 lineage, and its descendent reassortant genotypes, has shown an unusually high propensity to infect mammals, particularly those of the order Carnivora. There have been a large number of reports of infections in domestic cats (8) 2, wild and farmed foxes (9), farmed mink (10), and wild pinnipeds (6) 1. Reported disease in these species is severe, often comprising neurological clinical signs, respiratory distress and death. During mammalian infections the panzootic genotypes very quickly gain mammalian adaptations in their polymerase genes, often within a single mammalian infection (11) 1. Furthermore there is some evidence of limited or even sustained mammal-to-mammal transmission, particularly in mink farm outbreaks (9, 10) 3, and among sea lions and fur seals in South America (6, 12).
However, the number and frequency of independent bird-to-mammal cross-species transmission remains highly uncertain due to the comparatively low level of field and genomic surveillance of the virus in wild birds. Furthermore, the mode of transmission in these events is unclear with one study showing that the strain affecting pinnipeds in South America was able to transmit between co-housed ferrets, but did not exhibit respiratory transmission (13) 3.
Most recently a widespread outbreak of H5N1 has been detected in the USA in dairy cattle (14–16) 4. Cattle have not previously been described as being an enzootic host for influenza A viruses, although there is some limited serological evidence they may become infected by human seasonal influenza (17)and are susceptible to H5N1 infection under experimental conditions, although they do not develop significant clinical disease (18). However, cattle do have an endemic influenza virus, Influenza D virus, which is a component of bovine respiratory disease complex (19). This current bovine H5N1 outbreak appears to be characterized by reduced milk production, severe mastitis, and mild respiratory disease, though the full range of its severity remains uncertain.
Data
In a separate post 10, we describe our efforts to assemble H5N1 consensus genomes from raw sequence read data submitted to SRA by USDA (239 samples, primarily cattle but also several additional species, deposited in BioProject PRJNA1102327 2).
We also collated metadata included in BioProject PRJNA1102327 2, including host species. Both our genome assemblies/consensus sequences, and a table of metadata associated with them, are available from our public GitHub repository (https://github.com/andersen-lab/avian-influenza. 5)
Notably, key metadata required for phylodynamic and phylogeographic inference related to the bovine H5N1 outbreak (date of sampling and geographic location more specific than country) were not included in BioProject PRJNA1102327 2. We accessed information in which US state samples were collected from and on which date for 152 out of the 239 samples (20) 5, and included that in our table of metadata (21) 3 and our analyses.
Additionally, we included 4 H5N1 viral genome sequences sampled in Texas in April (14) 1 and deposited on BioProject PRJNA1092030 and three additional genomes sampled in Ohio in April shared with us by Andrew Bowman, Jim Lowe and Richard Webby. We combined this dataset with all complete North American 2.3.4.4b clade genome sequences available on GISAID from 2023-01-01 and later. These included genomes collected in Texas in dairy cattle, wild birds, domestic cats, and one human (A/Texas/37/2024(H5N1)) from 2024-03-10 onwards (14) 1. GISAID acknowledgement table is provided (see below).
Resulting alignments are available at avian-influenza/alignments at master · andersen-lab/avian-influenza · GitHub 3. We are continuing to update this data set as new sequence reads appear on SRA, new genomic sequences appear on GenBank or GISAID, and new metadata becomes available. ...
https://virological.org/t/prelimina...-virus-outbreak-in-u-s-cattle-part-1-of-2/970