Role of domestic ducks in the emergence of a new genotype of highly pathogenic H5N1 avian influenza A viruses in Bangladesh

Highly pathogenic avian influenza H5N1 viruses were first isolated in Bangladesh in February 2007. Subsequently, clades 2.2.2, 2.3.4.2 and 2.3.2.1a were identified in Bangladesh, and our previous surveillance data revealed that by the end of 2014, the circulating viruses exclusively comprised clade 2.3.2.1a. We recently determined the status of circulating avian influenza viruses in Bangladesh by conducting surveillance of live poultry markets and waterfowl in wetland areas from February 2015 through February 2016. Until April 2015, clade 2.3.2.1a persisted without any change in genotype. However, in June 2015, we identified a new genotype of H5N1 viruses, clade 2.3.2.1a, which quickly became predominant. These newly emerged H5N1 viruses contained the hemagglutinin, neuraminidase and matrix genes of circulating 2.3.2.1a Bangladeshi H5N1 viruses and five other genes of low pathogenic Eurasian-lineage avian influenza A viruses. Some of these internal genes were closely related to those of low pathogenic viruses isolated from ducks in free-range farms and wild birds in a wetland region of northeastern Bangladesh, where commercially raised domestic ducks have frequent contact with migratory birds. These findings indicate that migratory birds of the Central Asian flyway and domestic ducks in the free-range farms in Tanguar haor-like wetlands played an important role in the emergence of this novel genotype of highly pathogenic H5N1 viruses.

[1]  Baoping Yan,et al.  Migration of Waterfowl in the East Asian Flyway and Spatial Relationship to HPAI H5N1 Outbreaks , 2010, Avian diseases.

[2]  I. Monne,et al.  Reassortant Avian Influenza A ( H 5 N 1 ) Viruses with H 9 N 2-PB 1 Gene in Poultry , Bangladesh , 2019 .

[3]  D. Burt,et al.  A comparative analysis of host responses to avian influenza infection in ducks and chickens highlights a role for the interferon-induced transmembrane proteins in viral resistance , 2015, BMC Genomics.

[4]  Gavin J. D. Smith,et al.  Nomenclature updates resulting from the evolution of avian influenza A(H5) virus clades 2.1.3.2a, 2.2.1, and 2.3.4 during 2013–2014 , 2015, Influenza and other respiratory viruses.

[5]  Xiangming Xiao,et al.  Mapping migratory flyways in Asia using dynamic Brownian bridge movement models , 2015, Movement ecology.

[6]  Sudhir Kumar,et al.  MEGA7: Molecular Evolutionary Genetics Analysis Version 7.0 for Bigger Datasets. , 2016, Molecular biology and evolution.

[7]  Y. Guan,et al.  Genesis of a highly pathogenic and potentially pandemic H5N1 influenza virus in eastern Asia , 2004, Nature.

[8]  T. Tatusova,et al.  The Influenza Virus Resource at the National Center for Biotechnology Information , 2007, Journal of Virology.

[9]  Gavin J. D. Smith,et al.  Antigenic and Molecular Characterization of Avian Influenza A(H9N2) Viruses, Bangladesh , 2013, Emerging infectious diseases.

[10]  R. Webster,et al.  Multiple introductions of highly pathogenic avian influenza H5N1 viruses into Bangladesh , 2014, Emerging Microbes & Infections.

[11]  Isolation of avian influenza A(H5N1) viruses from humans--Hong Kong, May-December 1997. , 1997, MMWR. Morbidity and mortality weekly report.

[12]  R. Webster,et al.  Live Bird Markets of Bangladesh: H9N2 Viruses and the Near Absence of Highly Pathogenic H5N1 Influenza , 2011, PloS one.

[13]  Baoping Yan,et al.  Movements of Wild Ruddy Shelducks in the Central Asian Flyway and Their Spatial Relationship to Outbreaks of Highly Pathogenic Avian Influenza H5N1 , 2013, Viruses.

[14]  R. Webster,et al.  The Continuing Evolution of H5N1 and H9N2 Influenza Viruses in Bangladesh Between 2013 and 2014 , 2016, Avian diseases.

[15]  Y. Kawaoka,et al.  Complex Reassortment of Multiple Subtypes of Avian Influenza Viruses in Domestic Ducks at the Dongting Lake Region of China , 2013, Journal of Virology.

[16]  C. Davis,et al.  Multiple reassortment events among highly pathogenic avian influenza A(H5N1) viruses detected in Bangladesh. , 2014, Virology.

[17]  I. Monne,et al.  Reassortant Avian Influenza A(H5N1) Viruses with H9N2-PB1 Gene in Poultry, Bangladesh , 2013, Emerging infectious diseases.

[18]  N. Cox,et al.  Genetic characterization of the pathogenic influenza A/Goose/Guangdong/1/96 (H5N1) virus: similarity of its hemagglutinin gene to those of H5N1 viruses from the 1997 outbreaks in Hong Kong. , 1999, Virology.

[19]  P. Hosseini,et al.  Genetically Diverse Low Pathogenicity Avian Influenza A Virus Subtypes Co-Circulate among Poultry in Bangladesh , 2016, PloS one.

[20]  Y. Guan,et al.  Universal primer set for the full-length amplification of all influenza A viruses , 2001, Archives of Virology.

[21]  M. Nei,et al.  Estimation of the number of nucleotide substitutions in the control region of mitochondrial DNA in humans and chimpanzees. , 1993, Molecular biology and evolution.