Syrian Hamster as an Animal Model for the Study of Human Influenza Virus Infection
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T. Noda | Y. Kawaoka | H. Hasegawa | N. Nakajima | Y. Sakai-Tagawa | K. Iwatsuki-Horimoto | Yurie Ichiko | Yuko Sakai-Tagawa
[1] Louise A. Carolan,et al. Characterization of the Localized Immune Response in the Respiratory Tract of Ferrets following Infection with Influenza A and B Viruses , 2015, Journal of Virology.
[2] D. Pérez,et al. Modeling Human Respiratory Viral Infections in the Cotton Rat (Sigmodon hispidus). , 2014, Journal of antivirals & antiretrovirals.
[3] Lianfeng Zhang,et al. The mouse and ferret models for studying the novel avian-origin human influenza A (H7N9) virus , 2013, Virology Journal.
[4] Noriko Kishida,et al. Characterization of H7N9 influenza A viruses isolated from humans , 2013, Nature.
[5] T. Tumpey,et al. Pathogenesis and transmission of avian influenza A (H7N9) virus in ferrets and mice , 2013, Nature.
[6] Huachen Zhu,et al. Pathogenicity of the Novel A/H7N9 Influenza Virus in Mice , 2013, mBio.
[7] D. Pérez,et al. Receptor Characterization and Susceptibility of Cotton Rats to Avian and 2009 Pandemic Influenza Virus Strains , 2012, Journal of Virology.
[8] J. Fox,et al. Decoding the Distribution of Glycan Receptors for Human-Adapted Influenza A Viruses in Ferret Respiratory Tract , 2012, PloS one.
[9] Nicole M. Bouvier,et al. The DBA.2 Mouse Is Susceptible to Disease following Infection with a Broad, but Limited, Range of Influenza A and B Viruses , 2011, Journal of Virology.
[10] T. Tumpey,et al. The ferret as a model organism to study influenza A virus infection , 2011, Disease Models & Mechanisms.
[11] K. Subbarao,et al. The contribution of animal models to the understanding of the host range and virulence of influenza A viruses. , 2011, Microbes and infection.
[12] Samar K Dankar,et al. PB2 and Hemagglutinin Mutations Are Major Determinants of Host Range and Virulence in Mouse-Adapted Influenza A Virus , 2010, Journal of Virology.
[13] Z. Islam,et al. Neurotoxic, Inflammatory, and Mucosecretory Responses in the Nasal Airways of Mice Repeatedly Exposed to the Macrocyclic Trichothecene Mycotoxin Roridin A , 2010, Toxicologic pathology.
[14] H. Jin,et al. Influenza H1N1 A/Solomon Island/3/06 Virus Receptor Binding Specificity Correlates with Virus Pathogenicity, Antigenicity, and Immunogenicity in Ferrets , 2010, Journal of Virology.
[15] Hideo Goto,et al. In vitro and in vivo characterization of new swine-origin H1N1 influenza viruses , 2009, Nature.
[16] Rahul Raman,et al. Transmission and Pathogenesis of Swine-Origin 2009 A(H1N1) Influenza Viruses in Ferrets and Mice , 2009, Science.
[17] G. Prince,et al. The cotton rat model of respiratory viral infections. , 2009, Biologicals : journal of the International Association of Biological Standardization.
[18] M. Wirotesangthong,et al. Effects of Clinacanthus siamensis leaf extract on influenza virus infection , 2009, Microbiology and immunology.
[19] T. Tumpey,et al. Pathogenesis of 1918 Pandemic and H5N1 Influenza Virus Infections in a Guinea Pig Model: Antiviral Potential of Exogenous Alpha Interferon To Reduce Virus Shedding , 2009, Journal of Virology.
[20] S. Lal,et al. Adaptation of human influenza H3N2 virus in a mouse pneumonitis model: insights into viral virulence, tissue tropism and host pathogenesis. , 2009, Microbes and infection.
[21] M. Eichelberger. The cotton rat as a model to study influenza pathogenesis and immunity. , 2007, Viral immunology.
[22] S. Brody,et al. Influenza Virus Receptor Specificity and Cell Tropism in Mouse and Human Airway Epithelial Cells , 2006, Journal of Virology.
[23] Adolfo García-Sastre,et al. The guinea pig as a transmission model for human influenza viruses. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[24] J. Harkema,et al. The Nose Revisited: A Brief Review of the Comparative Structure, Function, and Toxicologic Pathology of the Nasal Epithelium , 2006, Toxicologic pathology.
[25] Yoshihiro Kawaoka,et al. Avian flu: Influenza virus receptors in the human airway , 2006, Nature.
[26] David E. Swayne,et al. Characterization of the Reconstructed 1918 Spanish Influenza Pandemic Virus , 2005, Science.
[27] M. Eichelberger,et al. The cotton rat provides a useful small-animal model for the study of influenza virus pathogenesis. , 2005, The Journal of general virology.
[28] P. Reeve. Growth of some attenuated influenza A viruses in hamsters , 1978, Medical Microbiology and Immunology.
[29] J. Phair,et al. The hamster as an experimental animal for the study of influenza , 1976, Medical Microbiology and Immunology.
[30] A. Makhov,et al. Studies on the genetic determinants of influenza virus pathogenicity for mice with the use of reassortants between mouse-adapted and non-adapted variants of the same virus strain , 2005, Archives of Virology.
[31] R. Jennings,et al. Transmissibility of influenza viruses in hamsters , 2005, Archives of Virology.
[32] P. Reeve,et al. Studies with some influenza B viruses in cell cultures, hamsters and hamster tracheal organ cultures , 2005, Medical Microbiology and Immunology.
[33] M. Selgrade,et al. Kinetic profile of influenza virus infection in three rat strains. , 2003, Comparative medicine.
[34] 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.
[35] L. Morey,et al. Collectin-mediated antiviral host defense of the lung: evidence from influenza virus infection of mice , 1997, Journal of virology.
[36] J. Oxford,et al. Influenza A (H1N1) vaccine efficacy in animal models is influenced by two amino acid substitutions in the hemagglutinin molecule. , 1989, Virology.
[37] R. Jennings,et al. The hamster as a model system for the study of influenza vaccines , 1976, Postgraduate medical journal.