Dual Function of CD81 in Influenza Virus Uncoating and Budding
暂无分享,去创建一个
M. Davidson | X. Zhuang | Jiang He | M. Bujny | Doory Kim | Eileen Sun
[1] Jiang He,et al. Live cell imaging of viral entry , 2013, Current Opinion in Virology.
[2] Jiang He,et al. Dissecting the Role of COPI Complexes in Influenza Virus Infection , 2012, Journal of Virology.
[3] Jeremy S. Rossman,et al. Filamentous Influenza Virus Enters Cells via Macropinocytosis , 2012, Journal of Virology.
[4] Xin A. Zhang,et al. Tetraspanins and cell membrane tubular structures , 2012, Cellular and Molecular Life Sciences.
[5] J. McKeating,et al. Hepatitis C Virus Induces CD81 and Claudin-1 Endocytosis , 2012, Journal of Virology.
[6] M. J. Evans,et al. Hepatitis C virus host cell entry. , 2012, Current opinion in virology.
[7] Mark Bates,et al. Evaluation of fluorophores for optimal performance in localization-based super-resolution imaging , 2011, Nature Methods.
[8] F. Cosset,et al. Hepatitis C Virus Is Primed by CD81 Protein for Low pH-dependent Fusion* , 2011, The Journal of Biological Chemistry.
[9] X. Zhuang,et al. Fast three-dimensional super-resolution imaging of live cells , 2011, Nature Methods.
[10] R. Lamb,et al. Influenza virus assembly and budding. , 2011, Virology.
[11] Adolfo García-Sastre,et al. Dissection of the Influenza A Virus Endocytic Routes Reveals Macropinocytosis as an Alternative Entry Pathway , 2011, PLoS pathogens.
[12] L. Jennings,et al. Tetraspanins and tumor progression , 2011, Clinical & Experimental Metastasis.
[13] J. Dubuisson,et al. Interacting Regions of CD81 and Two of Its Partners, EWI-2 and EWI-2wint, and Their Effect on Hepatitis C Virus Infection* , 2011, The Journal of Biological Chemistry.
[14] Xianghong Jing,et al. Influenza Virus M2 Protein Mediates ESCRT-Independent Membrane Scission , 2010, Cell.
[15] R. Lamb,et al. Influenza Virus M2 Ion Channel Protein Is Necessary for Filamentous Virion Formation , 2010, Journal of Virology.
[16] R. König,et al. Human Host Factors Required for Influenza Virus Replication , 2010, Nature.
[17] Daniel Becker,et al. Genome-wide RNAi screen identifies human host factors crucial for influenza virus replication , 2010, Nature.
[18] David J. Adams,et al. The IFITM Proteins Mediate Cellular Resistance to Influenza A H1N1 Virus, West Nile Virus, and Dengue Virus , 2009, Cell.
[19] N. Hacohen,et al. A Physical and Regulatory Map of Host-Influenza Interactions Reveals Pathways in H1N1 Infection , 2009, Cell.
[20] R. Ostrom,et al. CD82 endocytosis and cholesterol‐dependent reorganization of tetraspanin webs and lipid rafts , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[21] O. Barreiro,et al. Tetraspanin-enriched microdomains: a functional unit in cell plasma membranes. , 2009, Trends in cell biology.
[22] Nathan H. Roy,et al. Tetraspanins regulate cell-to-cell transmission of HIV-1 , 2009, Retrovirology.
[23] Z. Zhou,et al. Influenza virus morphogenesis and budding , 2009, Virus Research.
[24] Nathan H. Roy,et al. Formation of Syncytia Is Repressed by Tetraspanins in Human Immunodeficiency Virus Type 1-Producing Cells , 2009, Journal of Virology.
[25] J. Darlix,et al. A role for CD81 on the late steps of HIV-1 replication in a chronically infected T cell line , 2009, Retrovirology.
[26] X. Zhuang,et al. Epsin 1 is a cargo-specific adaptor for the clathrin-mediated endocytosis of the influenza virus , 2008, Proceedings of the National Academy of Sciences.
[27] M. Newton,et al. Drosophila RNAi screen identifies host genes important for influenza virus replication , 2008, Nature.
[28] C. Colangelo,et al. Cellular Proteins in Influenza Virus Particles , 2008, PLoS pathogens.
[29] E. Ruiz-Mateos,et al. CD63 Is Not Required for Production of Infectious Human Immunodeficiency Virus Type 1 in Human Macrophages , 2008, Journal of Virology.
[30] Mark Bates,et al. Three-Dimensional Super-Resolution Imaging by Stochastic Optical Reconstruction Microscopy , 2008, Science.
[31] Yuetsu Tanaka,et al. Modulation of Human Immunodeficiency Virus Type 1 Infectivity through Incorporation of Tetraspanin Proteins , 2007, Journal of Virology.
[32] R. Piper,et al. Biogenesis and function of multivesicular bodies. , 2007, Annual review of cell and developmental biology.
[33] M. Foti,et al. Human Immunodeficiency Virus Type 1 and Influenza Virus Exit via Different Membrane Microdomains , 2007, Journal of Virology.
[34] Q. Sattentau,et al. Human Immunodeficiency Virus Type 1 Assembly, Budding, and Cell-Cell Spread in T Cells Take Place in Tetraspanin-Enriched Plasma Membrane Domains , 2007, Journal of Virology.
[35] N. Roberts,et al. Small Interfering RNA Profiling Reveals Key Role of Clathrin-Mediated Endocytosis and Early Endosome Formation for Infection by Respiratory Syncytial Virus , 2007, Journal of Virology.
[36] R. Lamb,et al. Influenza Virus Hemagglutinin and Neuraminidase, but Not the Matrix Protein, Are Required for Assembly and Budding of Plasmid-Derived Virus-Like Particles , 2007, Journal of Virology.
[37] E. Odintsova,et al. Tetraspanins as Regulators of Protein Trafficking , 2007, Traffic.
[38] Giovanni Cardone,et al. Influenza virus pleiomorphy characterized by cryoelectron tomography , 2006, Proceedings of the National Academy of Sciences.
[39] O. Barreiro,et al. Tetraspanins CD9 and CD81 Modulate HIV-1-Induced Membrane Fusion1 , 2006, The Journal of Immunology.
[40] Michael J Rust,et al. Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM) , 2006, Nature Methods.
[41] Christopher T. Jones,et al. Diverse CD81 Proteins Support Hepatitis C Virus Infection , 2006, Journal of Virology.
[42] E. Blanchard,et al. Hepatitis C Virus Entry Depends on Clathrin-Mediated Endocytosis , 2006, Journal of Virology.
[43] M. Foti,et al. Mapping of tetraspanin-enriched microdomains that can function as gateways for HIV-1. , 2006, The Journal of cell biology.
[44] Michael J Rust,et al. Ligands for Clathrin-Mediated Endocytosis Are Differentially Sorted into Distinct Populations of Early Endosomes , 2006, Cell.
[45] M. Hemler. Tetraspanin functions and associated microdomains , 2005, Nature Reviews Molecular Cell Biology.
[46] G. Moseley,et al. Tetraspanins in Viral Infections: a Fundamental Role in Viral Biology? , 2005, Journal of Virology.
[47] A. Helenius,et al. Rab7 Associates with Early Endosomes to Mediate Sorting and Transport of Semliki Forest Virus to Late Endosomes , 2005, PLoS biology.
[48] S. Levy,et al. The tetraspanin web modulates immune-signalling complexes , 2005, Nature Reviews Immunology.
[49] J. Skehel,et al. Influenza A Viruses with Mutations in the M1 Helix Six Domain Display a Wide Variety of Morphological Phenotypes , 2005, Journal of Virology.
[50] Feng Zhang,et al. Assembly of endocytic machinery around individual influenza viruses during viral entry , 2004, Nature Structural &Molecular Biology.
[51] C. Rice,et al. CD81 Is Required for Hepatitis C Virus Glycoprotein-Mediated Viral Infection , 2004, Journal of Virology.
[52] Michael J Rust,et al. Visualizing infection of individual influenza viruses , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[53] A. García-Sastre,et al. Reverse genetics studies on the filamentous morphology of influenza A virus. , 2003, The Journal of general virology.
[54] T. V. Kolesnikova,et al. Functional domains in tetraspanin proteins. , 2003, Trends in biochemical sciences.
[55] Gary R. Whittaker,et al. Influenza Virus Can Enter and Infect Cells in the Absence of Clathrin-Mediated Endocytosis , 2002, Journal of Virology.
[56] A. Helenius,et al. Viral entry into the nucleus. , 2000, Annual review of cell and developmental biology.
[57] M. Houghton,et al. Binding of hepatitis C virus to CD81. , 1998, Science.
[58] R. Lamb,et al. The M1 and M2 proteins of influenza A virus are important determinants in filamentous particle formation. , 1998, Virology.
[59] R. Weiss,et al. The pH independence of mammalian retrovirus infection. , 1990, The Journal of general virology.
[60] R. Krug,et al. Influenza virus gene expression: control mechanisms at early and late times of infection and nuclear-cytoplasmic transport of virus-specific RNAs , 1987, Journal of virology.
[61] R. Deitch. Commentary from Westminster , 1983, The Lancet.
[62] A Helenius,et al. Infectious entry pathway of influenza virus in a canine kidney cell line , 1981, The Journal of cell biology.
[63] I. Dawson,et al. Filamentous forms associated with newly isolated influenza virus. , 1949, Lancet.
[64] Ari Helenius,et al. Virus entry by endocytosis. , 2010, Annual review of biochemistry.
[65] Stephen J. Elledge,et al. Supplemental Data The IFITM Proteins Mediate Cellular Resistance to Influenza A H 1 N 1 Virus , West Nile Virus , and Dengue Virus , 2009 .
[66] J. Skehel,et al. The structure and function of the hemagglutinin membrane glycoprotein of influenza virus. , 1987, Annual review of biochemistry.