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Journal Abstract Search


668 related items for PubMed ID: 28202753

  • 21. Profile and generation of reduced neuraminidase inhibitor susceptibility in highly pathogenic avian influenza H7N9 virus from human cases in Mainland of China, 2016-2019.
    Tang J, Zhang SX, Zhang J, Li XY, Zhou JF, Zou SM, Bo H, Xin L, Yang L, Liu J, Huang WJ, Dong J, Wang DY.
    Virology; 2020 Oct; 549():77-84. PubMed ID: 32853849
    [Abstract] [Full Text] [Related]

  • 22. Phylogenetic and genetic characterization of a 2017 clinical isolate of H7N9 virus in Guangzhou, China during the fifth epidemic wave.
    Deng Y, Li C, Han J, Wen Y, Wang J, Hong W, Li X, Liu Z, Ye Q, Li J, Zhou C, Yu L, Qin C, Zhang F, Jiang T.
    Sci China Life Sci; 2017 Dec; 60(12):1331-1339. PubMed ID: 29019145
    [Abstract] [Full Text] [Related]

  • 23. Amino Acid Substitutions That Affect Receptor Binding and Stability of the Hemagglutinin of Influenza A/H7N9 Virus.
    Schrauwen EJ, Richard M, Burke DF, Rimmelzwaan GF, Herfst S, Fouchier RA.
    J Virol; 2016 Jan 20; 90(7):3794-9. PubMed ID: 26792744
    [Abstract] [Full Text] [Related]

  • 24. Emergence and Adaptation of a Novel Highly Pathogenic H7N9 Influenza Virus in Birds and Humans from a 2013 Human-Infecting Low-Pathogenic Ancestor.
    Qi W, Jia W, Liu D, Li J, Bi Y, Xie S, Li B, Hu T, Du Y, Xing L, Zhang J, Zhang F, Wei X, Eden JS, Li H, Tian H, Li W, Su G, Lao G, Xu C, Xu B, Liu W, Zhang G, Ren T, Holmes EC, Cui J, Shi W, Gao GF, Liao M.
    J Virol; 2018 Jan 15; 92(2):. PubMed ID: 29070694
    [Abstract] [Full Text] [Related]

  • 25. Flexibility In Vitro of Amino Acid 226 in the Receptor-Binding Site of an H9 Subtype Influenza A Virus and Its Effect In Vivo on Virus Replication, Tropism, and Transmission.
    Obadan AO, Santos J, Ferreri L, Thompson AJ, Carnaccini S, Geiger G, Gonzalez Reiche AS, Rajão DS, Paulson JC, Perez DR.
    J Virol; 2019 Mar 15; 93(6):. PubMed ID: 30567980
    [Abstract] [Full Text] [Related]

  • 26. R229I substitution from oseltamivir induction in HA1 region significantly increased the fitness of a H7N9 virus bearing NA 292K.
    Tang J, Zou SM, Zhou JF, Gao RB, Xin L, Zeng XX, Huang WJ, Li XY, Cheng YH, Liu LQ, Xiao N, Wang DY.
    Emerg Microbes Infect; 2024 Dec 15; 13(1):2373314. PubMed ID: 38922326
    [Abstract] [Full Text] [Related]

  • 27. Complex N-glycans are important for interspecies transmission of H7 influenza A viruses.
    Spruit CM, Palme DI, Li T, Ríos Carrasco M, Gabarroca García A, Sweet IR, Kuryshko M, Maliepaard JCL, Reiding KR, Scheibner D, Boons G-J, Abdelwhab EM, de Vries RP.
    J Virol; 2024 Apr 16; 98(4):e0194123. PubMed ID: 38470143
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  • 31. Antigenic Drift of Influenza A(H7N9) Virus Hemagglutinin.
    Ning T, Nie J, Huang W, Li C, Li X, Liu Q, Zhao H, Wang Y.
    J Infect Dis; 2019 Jan 01; 219(1):19-25. PubMed ID: 29982588
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  • 32. Functional significance of the hemadsorption activity of influenza virus neuraminidase and its alteration in pandemic viruses.
    Uhlendorff J, Matrosovich T, Klenk HD, Matrosovich M.
    Arch Virol; 2009 Jan 01; 154(6):945-57. PubMed ID: 19458903
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  • 34. Neuraminidase activity and specificity of influenza A virus are influenced by haemagglutinin-receptor binding.
    Lai JCC, Karunarathna HMTK, Wong HH, Peiris JSM, Nicholls JM.
    Emerg Microbes Infect; 2019 Jan 01; 8(1):327-338. PubMed ID: 30866786
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  • 35. Biological characterisation of the emerged highly pathogenic avian influenza (HPAI) A(H7N9) viruses in humans, in mainland China, 2016 to 2017.
    Zhu W, Zhou J, Li Z, Yang L, Li X, Huang W, Zou S, Chen W, Wei H, Tang J, Liu L, Dong J, Wang D, Shu Y.
    Euro Surveill; 2017 May 11; 22(19):. PubMed ID: 28537546
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  • 36. Immune Escape Adaptive Mutations in the H7N9 Avian Influenza Hemagglutinin Protein Increase Virus Replication Fitness and Decrease Pandemic Potential.
    Chang P, Sealy JE, Sadeyen JR, Bhat S, Lukosaityte D, Sun Y, Iqbal M.
    J Virol; 2020 Sep 15; 94(19):. PubMed ID: 32699084
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  • 37. Phenotypic Effects of Substitutions within the Receptor Binding Site of Highly Pathogenic Avian Influenza H5N1 Virus Observed during Human Infection.
    Eggink D, Spronken M, van der Woude R, Buzink J, Broszeit F, McBride R, Pawestri HA, Setiawaty V, Paulson JC, Boons GJ, Fouchier RAM, Russell CA, de Jong MD, de Vries RP.
    J Virol; 2020 Jun 16; 94(13):. PubMed ID: 32321815
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  • 38. The Effects of Genetic Variation on H7N9 Avian Influenza Virus Pathogenicity.
    Huang SW, Wang SF.
    Viruses; 2020 Oct 28; 12(11):. PubMed ID: 33126529
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  • 39. Genetic tuning of the novel avian influenza A(H7N9) virus during interspecies transmission, China, 2013.
    Wang D, Yang L, Gao R, Zhang X, Tan Y, Wu A, Zhu W, Zhou J, Zou S, Li X, Sun Y, Zhang Y, Liu Y, Liu T, Xiong Y, Xu J, Chen L, Weng Y, Qi X, Guo J, Li X, Dong J, Huang W, Zhang Y, Dong L, Zhao X, Liu L, Lu J, Lan Y, Wei H, Xin L, Chen Y, Xu C, Chen T, Zhu Y, Jiang T, Feng Z, Yang W, Wang Y, Zhu H, Guan Y, Gao GF, Li D, Han J, Wang S, Wu G, Shu Y.
    Euro Surveill; 2014 Jun 26; 19(25):. PubMed ID: 24993557
    [Abstract] [Full Text] [Related]

  • 40. Genesis and Spread of Newly Emerged Highly Pathogenic H7N9 Avian Viruses in Mainland China.
    Yang L, Zhu W, Li X, Chen M, Wu J, Yu P, Qi S, Huang Y, Shi W, Dong J, Zhao X, Huang W, Li Z, Zeng X, Bo H, Chen T, Chen W, Liu J, Zhang Y, Liang Z, Shi W, Shu Y, Wang D.
    J Virol; 2017 Dec 01; 91(23):. PubMed ID: 28956760
    [Abstract] [Full Text] [Related]


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