Isolation of a Novel Reassortant Highly Pathogenic Avian Influenza (H5N2) Virus in Egypt
暂无分享,去创建一个
A. Selim | A. Arafa | A. Erfan | W. Hassan | M. Naguib | M. Tawakol | M. El-Husseiny | N. Hagag | M. Shahein | M. Saif | Azhar G. Shalaby | H. Fahmy | Ahmed A. Nour | E. Ibraheem | M. Hassan | A. M. Abdelhakim | Mohamed A. A. Awad | Mohamed K. Hassan
[1] Juan Diego,et al. Caracterización molecular de arveja arbustiva (Pisum sativum L) en la zona cerealista del departamento de Nariño, Colombia , 2020 .
[2] A. Shehata,et al. Co-infections, genetic, and antigenic relatedness of avian influenza H5N8 and H5N1 viruses in domestic and wild birds in Egypt , 2019, Poultry science.
[3] T. Harder,et al. Endemic situation of multiple avian influenza strains in poultry in Egypt: A continuing nightmare , 2018, Zoonoses and public health.
[4] T. Mettenleiter,et al. Multiple Introductions of Influenza A(H5N8) Virus into Poultry, Egypt, 2017 , 2018, Emerging infectious diseases.
[5] Ruiyun Li,et al. Multiple introductions of reassorted highly pathogenic avian influenza viruses (H5N8) clade 2.3.4.4b causing outbreaks in wild birds and poultry in Egypt. , 2018, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[6] Shin-Hee Kim. Challenge for One Health: Co-Circulation of Zoonotic H5N1 and H9N2 Avian Influenza Viruses in Egypt , 2018, Viruses.
[7] R. Webby,et al. Genetic characterization of highly pathogenic avian influenza A H5N8 viruses isolated from wild birds in Egypt. , 2017, The Journal of general virology.
[8] A. Selim,et al. Highly Pathogenic Avian Influenza Virus (H5N8) Clade 2.3.4.4 Infection in Migratory Birds, Egypt , 2017, Emerging infectious diseases.
[9] M. Beer,et al. Riems influenza a typing array (RITA): An RT-qPCR-based low density array for subtyping avian and mammalian influenza a viruses , 2016, Scientific Reports.
[10] S. Maurer-Stroh,et al. Evolutionary trajectories and diagnostic challenges of potentially zoonotic avian influenza viruses H5N1 and H9N2 co-circulating in Egypt. , 2015, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[11] A. von Haeseler,et al. IQ-TREE: A Fast and Effective Stochastic Algorithm for Estimating Maximum-Likelihood Phylogenies , 2014, Molecular biology and evolution.
[12] R. Fouchier,et al. Role of receptor binding specificity in influenza A virus transmission and pathogenesis , 2014, The EMBO journal.
[13] K. Katoh,et al. MAFFT Multiple Sequence Alignment Software Version 7: Improvements in Performance and Usability , 2013, Molecular biology and evolution.
[14] Shane S. Sturrock,et al. Geneious Basic: An integrated and extendable desktop software platform for the organization and analysis of sequence data , 2012, Bioinform..
[15] M. Beer,et al. Simple, Sensitive, and Swift Sequencing of Complete H5N1 Avian Influenza Virus Genomes , 2009, Journal of Clinical Microbiology.
[16] I. Monne,et al. Development and Validation of a One-Step Real-Time PCR Assay for Simultaneous Detection of Subtype H5, H7, and H9 Avian Influenza Viruses , 2008, Journal of Clinical Microbiology.
[17] K. Lohman,et al. Development of Real-Time RT-PCR for the Detection of Avian Influenza Virus , 2003, Avian diseases.
[18] G. Air,et al. Antibody Epitopes on the Neuraminidase of a Recent H3N2 Influenza Virus (A/Memphis/31/98) , 2002, Journal of Virology.
[19] G. Air,et al. Location of antigenic sites on the three-dimensional structure of the influenza N2 virus neuraminidase. , 1985, Virology.