Key amino acid position 272 in neuraminidase determines the replication and virulence of H5N6 avian influenza virus in mammals
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M. Liao | W. Qi | S. Ding | Huanan Li | Yuting Jiang | Jiahao Zhang | Kaixiong Ma | Yang Guo | Zhang Tao | Xiaomin Wang | Yi Liu
[1] Xiufan Liu,et al. Clinical features of the first critical case of acute encephalitis caused by the avian influenza A (H5N6) virus , 2022, Emerging microbes & infections.
[2] F. Gao,et al. Human infection of avian influenza A H3N8 virus and the viral origins: a descriptive study. , 2022, The Lancet. Microbe.
[3] M. Liao,et al. Resurgence of H5N6 avian influenza virus in 2021 poses new threat to public health. , 2022, The Lancet. Microbe.
[4] Xiang-rong Zhao,et al. Epidemiologic, Clinical, and Genetic Characteristics of Human Infections with Influenza A(H5N6) Viruses, China , 2022, Emerging infectious diseases.
[5] I. Barr,et al. Resurgence of avian influenza virus , 2022, Science.
[6] Xinghui Chen,et al. Global epidemiology of human infections with variant influenza viruses, 1959-2021: A descriptive study. , 2022, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[7] Ruyi Gao,et al. Effects of HA2 154 deglycosylation and NA V202I mutation on biological property of H5N6 subtype avian influenza virus. , 2022, Veterinary microbiology.
[8] S. Ovchinnikov,et al. ColabFold: making protein folding accessible to all , 2022, Nature Methods.
[9] Honglei Sun,et al. H9N2 virus-derived M1 protein promotes H5N6 virus release in mammalian cells: Mechanism of avian influenza virus inter-species infection in humans , 2021, PLoS pathogens.
[10] G. Gao,et al. Emerging H5N8 avian influenza viruses , 2021, Science.
[11] Tao Zhang,et al. Genomic evolution, transmission dynamics, and pathogenicity of avian influenza A (H5N8) viruses emerging in China, 2020 , 2021, Virus evolution.
[12] N. Feng,et al. PB1 S524G mutation of wild bird-origin H3N8 influenza A virus enhances virulence and fitness for transmission in mammals , 2021, Emerging microbes & infections.
[13] Zejun Li,et al. N-Linked Glycosylation Plays an Important Role in Budding of Neuraminidase Protein and Virulence of Influenza Viruses , 2020, Journal of Virology.
[14] G. Gao,et al. Emerging HxNy Influenza A Viruses. , 2020, Cold Spring Harbor perspectives in medicine.
[15] Bo Li,et al. Genetic diversity, phylogeography, and evolutionary dynamics of highly pathogenic avian influenza A (H5N6) viruses , 2020, Virus evolution.
[16] Y. Bi,et al. An R195K Mutation in the PA-X Protein Increases the Virulence and Transmission of Influenza A Virus in Mammalian Hosts , 2020, Journal of Virology.
[17] R. Webby,et al. Pandemic potential of highly pathogenic avian influenza clade 2.3.4.4 A(H5) viruses , 2020, Reviews in medical virology.
[18] T. Qin,et al. Glycosylation deletion of hemagglutinin head in the H5 subtype avian influenza virus enhances its virulence in mammals by inducing endoplasmic reticulum stress. , 2020, Transboundary and emerging diseases.
[19] I. Wilson,et al. Influenza Hemagglutinin Structures and Antibody Recognition. , 2019, Cold Spring Harbor perspectives in medicine.
[20] X. Wan,et al. Influenza Neuraminidase: Underrated Role in Receptor Binding. , 2019, Trends in microbiology.
[21] J. Yewdell,et al. Influenza Hemagglutinin and Neuraminidase: Yin–Yang Proteins Coevolving to Thwart Immunity , 2019, Viruses.
[22] L. Brown,et al. Influenza Virus Neuraminidase Structure and Functions , 2019, Front. Microbiol..
[23] C. Russell,et al. Influenza Hemagglutinin Protein Stability, Activation, and Pandemic Risk. , 2018, Trends in microbiology.
[24] M. Liao,et al. The Appropriate Combination of Hemagglutinin and Neuraminidase Prompts the Predominant H5N6 Highly Pathogenic Avian Influenza Virus in Birds , 2018, Front. Microbiol..
[25] J. Kwon,et al. Molecular Markers for Interspecies Transmission of Avian Influenza Viruses in Mammalian Hosts , 2017, International journal of molecular sciences.
[26] R. Webster,et al. Molecular basis of mammalian transmissibility of avian H1N1 influenza viruses and their pandemic potential , 2017, Proceedings of the National Academy of Sciences.
[27] G. Gao,et al. Epidemiology, Evolution, and Pathogenesis of H7N9 Influenza Viruses in Five Epidemic Waves since 2013 in China. , 2017, Trends in microbiology.
[28] M. Liao,et al. Biological Characterizations of H5Nx Avian Influenza Viruses Embodying Different Neuraminidases , 2017, Front. Microbiol..
[29] Xiang-rong Zhao,et al. Genesis and Dissemination of Highly Pathogenic H5N6 Avian Influenza Viruses , 2016, Journal of Virology.
[30] Hongjie Yu,et al. Genesis, Evolution and Prevalence of H5N6 Avian Influenza Viruses in China. , 2016, Cell host & microbe.
[31] Jiyong Zhou,et al. Characterization of H7N2 Avian Influenza Virus in Wild Birds and Pikas in Qinghai-Tibet Plateau Area , 2016, Scientific Reports.
[32] G. Gao,et al. Novel avian influenza A (H5N6) viruses isolated in migratory waterfowl before the first human case reported in China, 2014 , 2016, Scientific Reports.
[33] Wenjun Ma,et al. PB2-588 V promotes the mammalian adaptation of H10N8, H7N9 and H9N2 avian influenza viruses , 2016, Scientific Reports.
[34] Zijian Feng,et al. Human infection with a novel, highly pathogenic avian influenza A (H5N6) virus: Virological and clinical findings. , 2016, The Journal of infection.
[35] Hualan Chen,et al. Glycine at Position 622 in PB1 Contributes to the Virulence of H5N1 Avian Influenza Virus in Mice , 2015, Journal of Virology.
[36] George F. Gao,et al. Epidemiology, Evolution, and Recent Outbreaks of Avian Influenza Virus in China , 2015, Journal of Virology.
[37] G. Gao,et al. Bat-derived influenza-like viruses H17N10 and H18N11 , 2014, Trends in Microbiology.
[38] R. Webster,et al. Evolution and ecology of influenza A viruses. , 1992, Current topics in microbiology and immunology.
[39] G. Gao,et al. Amino Acid 316 of Hemagglutinin and the Neuraminidase Stalk Length Influence Virulence of H9N2 Influenza Virus in Chickens and Mice , 2012, Journal of Virology.
[40] I. Wilson,et al. Influenza Virus Neuraminidases with Reduced Enzymatic Activity That Avidly Bind Sialic Acid Receptors , 2012, Journal of Virology.
[41] Charles J. Russell,et al. Acid Stability of the Hemagglutinin Protein Regulates H5N1 Influenza Virus Pathogenicity , 2011, PLoS pathogens.
[42] Wenbo Liu,et al. Novel Reassortant Highly Pathogenic Avian Influenza (H5N5) Viruses in Domestic Ducks, China , 2011, Emerging infectious diseases.
[43] K. Subbarao,et al. Glycosylation at 158N of the Hemagglutinin Protein and Receptor Binding Specificity Synergistically Affect the Antigenicity and Immunogenicity of a Live Attenuated H5N1 A/Vietnam/1203/2004 Vaccine Virus in Ferrets , 2010, Journal of Virology.
[44] J. Doudna,et al. Adaptive strategies of the influenza virus polymerase for replication in humans , 2009, Proceedings of the National Academy of Sciences.
[45] T. Kuiken,et al. Molecular Determinants of Adaptation of Highly Pathogenic Avian Influenza H7N7 Viruses to Efficient Replication in the Human Host , 2009, Journal of Virology.
[46] Lanjuan Li,et al. Characterization of the H5N1 Highly Pathogenic Avian Influenza Virus Derived from Wild Pikas in China , 2009, Journal of Virology.
[47] H. Klenk,et al. Functional significance of the hemadsorption activity of influenza virus neuraminidase and its alteration in pandemic viruses , 2009, Archives of Virology.
[48] John Steel,et al. Transmission of Influenza Virus in a Mammalian Host Is Increased by PB2 Amino Acids 627K or 627E/701N , 2009, PLoS pathogens.
[49] A. Tomoiu,et al. Avian Influenza A Virus Polymerase Association with Nucleoprotein, but Not Polymerase Assembly, Is Impaired in Human Cells during the Course of Infection , 2008, Journal of Virology.
[50] K. Labadie,et al. Host-range determinants on the PB2 protein of influenza A viruses control the interaction between the viral polymerase and nucleoprotein in human cells. , 2007, Virology.
[51] D. Pérez,et al. Amino Acid 226 in the Hemagglutinin of H9N2 Influenza Viruses Determines Cell Tropism and Replication in Human Airway Epithelial Cells , 2007, Journal of Virology.
[52] Yi Guan,et al. Fatal outcome of human influenza A (H5N1) is associated with high viral load and hypercytokinemia , 2006, Nature Medicine.
[53] R. Webster,et al. Molecular Basis of Replication of Duck H5N1 Influenza Viruses in a Mammalian Mouse Model , 2005, Journal of Virology.
[54] Yi Guan,et al. Lethality to Ferrets of H5N1 Influenza Viruses Isolated from Humans and Poultry in 2004 , 2005, Journal of Virology.
[55] K. Katoh,et al. MAFFT: a novel method for rapid multiple sequence alignment based on fast Fourier transform. , 2002, Nucleic acids research.
[56] Y. Guan,et al. Universal primer set for the full-length amplification of all influenza A viruses , 2001, Archives of Virology.
[57] Yoshihiro Kawaoka,et al. Molecular Basis for High Virulence of Hong Kong H5N1 Influenza A Viruses , 2001, Science.
[58] R. Webster,et al. A DNA transfection system for generation of influenza A virus from eight plasmids. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[59] 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.
[60] Y. Guan,et al. Molecular characterization of H9N2 influenza viruses: were they the donors of the "internal" genes of H5N1 viruses in Hong Kong? , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[61] H. Goto,et al. Biological Heterogeneity, Including Systemic Replication in Mice, of H5N1 Influenza A Virus Isolates from Humans in Hong Kong , 1999, Journal of Virology.
[62] G. Air,et al. Antigenic structure and variation in an influenza virus N9 neuraminidase , 1987, Journal of virology.