Avoiding the void: cell-to-cell spread of human viruses
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[1] L. Enquist,et al. Efficient Axonal Localization of Alphaherpesvirus Structural Proteins in Cultured Sympathetic Neurons Requires Viral Glycoprotein E , 2005, Journal of Virology.
[2] F. Murphy,et al. Comparative pathogenesis of rabies and rabies-like viruses: infection of the central nervous system and centrifugal spread of virus to peripheral tissues. , 1973, Laboratory investigation; a journal of technical methods and pathology.
[3] O. Schwartz,et al. Inefficient Human Immunodeficiency Virus Replication in Mobile Lymphocytes , 2006, Journal of Virology.
[4] R Blumenthal,et al. Quantitation of human immunodeficiency virus type 1 infection kinetics , 1993, Journal of virology.
[5] Q. Sattentau,et al. Membrane nanotubes physically connect T cells over long distances presenting a novel route for HIV-1 transmission , 2008, Nature Cell Biology.
[6] J. Bentz. Viral Fusion Mechanisms , 1993 .
[7] N. Makhortova,et al. Neurokinin-1 enables measles virus trans-synaptic spread in neurons. , 2007, Virology.
[8] Junichi Nakai,et al. Vaccinia Virus Uses Macropinocytosis and Apoptotic Mimicry to Enter Host Cells , 2008 .
[9] Q. Sattentau,et al. Efficient HIV-1 transmission from macrophages to T cells across transient virological synapses. , 2008, Blood.
[10] R. Steinman,et al. Replication of HIV-1 in Dendritic Cell-Derived Syncytia at the Mucosal Surface of the Adenoid , 1996, Science.
[11] R. Compans,et al. Virus Infection of Polarized Epithelial Cells , 1993, Advances in Virus Research.
[12] M. Huber,et al. Directed Egress of Animal Viruses Promotes Cell-to-Cell Spread , 2002, Journal of Virology.
[13] P. Holmes. Open Sesame! , 1971, Nature.
[14] F. Frischknecht,et al. Interactions between Vaccinia Virus IEV Membrane Proteins and Their Roles in IEV Assembly and Actin Tail Formation , 1999, Journal of Virology.
[15] J. Rietdorf,et al. African swine fever virus induces filopodia‐like projections at the plasma membrane , 2006, Cellular microbiology.
[16] D. Trono,et al. Response to Comment on "Inhibition of Hepatitis B Virus Replication by APOBEC3G" , 2004, Science.
[17] H. Clark,et al. Cell to cell transmission of virus in the central nervous system. II. Experimental rabies in mouse. , 1975, Laboratory investigation; a journal of technical methods and pathology.
[18] S. Roche,et al. Evidence that Rabies Virus Forms Different Kinds of Fusion Machines with Different pH Thresholds for Fusion , 2004, Journal of Virology.
[19] S. Nisole,et al. TRIM family proteins: retroviral restriction and antiviral defence , 2005, Nature Reviews Microbiology.
[20] F. Rixon,et al. Herpes Simplex Virus Type 1 Accumulation, Envelopment, and Exit in Growth Cones and Varicosities in Mid-Distal Regions of Axons , 2006, Journal of Virology.
[21] M. Stevenson,et al. Macrophages archive HIV‐1 virions for dissemination in trans , 2005, The EMBO journal.
[22] G. Smith,et al. Vaccinia virus gene A36R encodes a M(r) 43-50 K protein on the surface of extracellular enveloped virus. , 1994, Virology.
[23] L. Enquist,et al. Complementation analysis of pseudorabies virus gE and gI mutants in retinal ganglion cell neurotropism , 1994, Journal of virology.
[24] É. Oksenhendler,et al. HIV and T cell expansion in splenic white pulps is accompanied by infiltration of HIV-specific cytotoxic T lymphocytes , 1994, Cell.
[25] T. Geijtenbeek,et al. Syndecan-3 is a dendritic cell-specific attachment receptor for HIV-1 , 2007, Proceedings of the National Academy of Sciences.
[26] David C. Johnson,et al. Herpes Simplex Virus gE/gI Sorts Nascent Virions to Epithelial Cell Junctions, Promoting Virus Spread , 2001, Journal of Virology.
[27] G. A. Smith,et al. Sorting and Transport of Alpha Herpesviruses in Axons , 2001, Traffic.
[28] Chris Sander,et al. Cellular cofactors affecting hepatitis C virus infection and replication , 2007, Proceedings of the National Academy of Sciences.
[29] C. Bangham,et al. The immune control and cell-to-cell spread of human T-lymphotropic virus type 1. , 2003, The Journal of general virology.
[30] L. Enquist,et al. Role of Envelope Protein gE Endocytosis in the Pseudorabies Virus Life Cycle , 1998, Journal of Virology.
[31] J. Cohen,et al. Varicella-zoster virus glycoprotein I is essential for growth of virus in Vero cells , 1997, Journal of virology.
[32] N. Nagata,et al. Wild-type measles virus induces large syncytium formation in primary human small airway epithelial cells by a SLAM(CD150)-independent mechanism. , 2003, Virus research.
[33] M. Law,et al. Vaccinia virus motility. , 2003, Annual review of microbiology.
[34] A. Izeta,et al. Compartmentalization of VP16 in Cells Infected with Recombinant Herpes Simplex Virus Expressing VP16-Green Fluorescent Protein Fusion Proteins , 2004, Journal of Virology.
[35] C. Sweet. The pathogenicity of cytomegalovirus. , 1999, FEMS microbiology reviews.
[36] N. De Regge,et al. α-Herpesvirus glycoprotein D interaction with sensory neurons triggers formation of varicosities that serve as virus exit sites , 2006, The Journal of cell biology.
[37] G. Rall,et al. Measles Virus Spread between Neurons Requires Cell Contact but Not CD46 Expression, Syncytium Formation, or Extracellular Virus Production , 2000, Journal of Virology.
[38] J. Church. Identification of Host Proteins Required for HIV Infection Through a Functional Genomic Screen , 2008, Pediatrics.
[39] L. Enquist,et al. In Vivo Egress of an Alphaherpesvirus from Axons , 2002, Journal of Virology.
[40] D. Davis,et al. Cutting Edge: Membrane Nanotubes Connect Immune Cells12 , 2004, The Journal of Immunology.
[41] Q. Sattentau,et al. Dangerous liaisons at the virological synapse. , 2004, The Journal of clinical investigation.
[42] Yuetsu Tanaka,et al. Human T-lymphotropic Virus, Type 1, Tax Protein Triggers Microtubule Reorientation in the Virological Synapse* , 2005, Journal of Biological Chemistry.
[43] W. Bellini,et al. Experimental measles. I. Pathogenesis in the normal and the immunized host. , 1997, Virology.
[44] Clare Jolly,et al. HIV-1 Cell to Cell Transfer across an Env-induced, Actin-dependent Synapse , 2004, The Journal of experimental medicine.
[45] Clare Jolly,et al. Requirement for an Intact T-Cell Actin and Tubulin Cytoskeleton for Efficient Assembly and Spread of Human Immunodeficiency Virus Type 1 , 2007, Journal of Virology.
[46] L. Enquist,et al. Glycoprotein D-Independent Spread of Pseudorabies Virus Infection in Cultured Peripheral Nervous System Neurons in a Compartmented System , 2007, Journal of Virology.
[47] Michael Loran Dustin,et al. Cell adhesion molecules and actin cytoskeleton at immune synapses and kinapses. , 2007, Current opinion in cell biology.
[48] A. Rainbow,et al. Herpes simplex virus glycoproteins E and I facilitate cell-to-cell spread in vivo and across junctions of cultured cells , 1994, Journal of virology.
[49] M. Law,et al. The exit of vaccinia virus from infected cells. , 2004, Virus research.
[50] Q. Sattentau,et al. Adhesion Molecule Interactions Facilitate Human Immunodeficiency Virus Type 1-Induced Virological Synapse Formation between T Cells , 2007, Journal of Virology.
[51] P. Bieniasz,et al. Tetherin inhibits retrovirus release and is antagonized by HIV-1 Vpu , 2008, Nature.
[52] M. Law,et al. Antibody-sensitive and antibody-resistant cell-to-cell spread by vaccinia virus: role of the A33R protein in antibody-resistant spread. , 2002, The Journal of general virology.
[53] David C. Johnson,et al. Herpes Simplex Virus Capsids Are Transported in Neuronal Axons without an Envelope Containing the Viral Glycoproteins , 2006, Journal of Virology.
[54] A. Molla,et al. Identification of host genes involved in hepatitis C virus replication by small interfering RNA technology , 2007, Hepatology.
[55] Michael Loran Dustin,et al. T cell-dendritic cell immunological synapses. , 2006, Current opinion in immunology.
[56] H. Klenk,et al. Polarized Budding of Measles Virus Is Not Determined by Viral Surface Glycoproteins , 1998, Journal of Virology.
[57] C. M. Owens,et al. The cytoplasmic body component TRIM5α restricts HIV-1 infection in Old World monkeys , 2004, Nature.
[58] A. Smith,et al. Rabies virus binding at neuromuscular junctions. , 1985, Virus research.
[59] A. Farnsworth,et al. Herpes Simplex Virus gE/gI Must Accumulate in the trans-Golgi Network at Early Times and Then Redistribute to Cell Junctions To Promote Cell-Cell Spread , 2006, Journal of Virology.
[60] S. Fuller,et al. Centrosome polarization delivers secretory granules to the immunological synapse , 2006, Nature.
[61] D. Sabatini,et al. Asymmetric budding of viruses in epithelial monlayers: a model system for study of epithelial polarity. , 1978, Proceedings of the National Academy of Sciences of the United States of America.
[62] W. Greene,et al. In Vitro Derived Dendritic Cells trans-Infect CD4 T Cells Primarily with Surface-Bound HIV-1 Virions , 2007, PLoS pathogens.
[63] M. Reddehase,et al. Polyclonal cytomegalovirus-specific antibodies not only prevent virus dissemination from the portal of entry but also inhibit focal virus spread within target tissues , 2008, Medical Microbiology and Immunology.
[64] Y. Kooyk,et al. DC-SIGN: escape mechanism for pathogens , 2003, Nature Reviews Immunology.
[65] Geoffrey L. Smith,et al. Virus-Induced Cell Motility , 1998, Journal of Virology.
[66] M. McElrath,et al. Initial Events in Establishing Vaginal Entry and Infection by Human Immunodeficiency Virus Type-1 , 2007, Immunity.
[67] W. Paxton,et al. Efficient Capture of Antibody Neutralized HIV-1 by Cells Expressing DC-SIGN and Transfer to CD4+ T Lymphocytes12 , 2007, The Journal of Immunology.
[68] E. Boulan,et al. Polarized distribution of viral envelope proteins in the plasma membrane of infected epithelial cells , 1980, Cell.
[69] M. Capobianchi,et al. The biological relevance of polykaryons in the immune response. , 1997, Immunology today.
[70] Q. Sattentau,et al. Regulated secretion from CD4+ T cells. , 2007, Trends in immunology.
[71] David C. Johnson,et al. The Extracellular Domain of Herpes Simplex Virus gE Is Indispensable for Efficient Cell-to-Cell Spread: Evidence for gE/gI Receptors , 2005, Journal of Virology.
[72] Mark Marsh,et al. Virus Entry: Open Sesame , 2006, Cell.
[73] C. Rabourdin-Combe,et al. Measles Virus Suppresses Cell-mediated Immunity by Interfering with the Survival and Functions of Dendritic and T Cells , 1997, The Journal of experimental medicine.
[74] D. McDonald,et al. Recruitment of HIV and Its Receptors to Dendritic Cell-T Cell Junctions , 2003, Science.
[75] B. Sodeik,et al. Viral interactions with the cytoskeleton: a hitchhiker's guide to the cell , 2006, Cellular microbiology.
[76] P. Dubreuil,et al. Cell-to-Cell Spread of Wild-Type Herpes Simplex Virus Type 1, but Not of Syncytial Strains, Is Mediated by the Immunoglobulin-Like Receptors That Mediate Virion Entry, Nectin1 (PRR1/HveC/HIgR) and Nectin2 (PRR2/HveB) , 2000, Journal of Virology.
[77] Gregory A. Smith,et al. Two Modes of Herpesvirus Trafficking in Neurons: Membrane Acquisition Directs Motion , 2006, Journal of Virology.
[78] T. Kimman,et al. Glycoprotein D-negative pseudorabies virus can spread transneuronally via direct neuron-to-neuron transmission in its natural host, the pig, but not after additional inactivation of gE or gI , 1996, Journal of virology.
[79] A. Valencia,et al. Filamin-A regulates actin-dependent clustering of HIV receptors , 2007, Nature Cell Biology.
[80] Nathan M. Sherer,et al. Actin- and myosin-driven movement of viruses along filopodia precedes their entry into cells , 2005, The Journal of cell biology.
[81] Q. Sattentau,et al. Retroviral Spread by Induction of Virological Synapses , 2004, Traffic.
[82] M. Lafon. Rabies virus receptors , 2008 .
[83] Stephen McQuaid,et al. Observation of Measles Virus Cell-to-Cell Spread in Astrocytoma Cells by Using a Green Fluorescent Protein-Expressing Recombinant Virus , 1999, Journal of Virology.
[84] R. Steinman,et al. The interaction of HIV with dendritic cells: outcomes and pathways , 2007, Trends in Immunology.
[85] J. Lifson,et al. Immunodeficiency virus uptake, turnover, and 2-phase transfer in human dendritic cells. , 2004, Blood.
[86] R. Jacobson,et al. Measles virus receptors: SLAM and CD46 , 2004, Reviews in medical virology.
[87] T. Mettenleiter. Pathogenesis of neurotropic herpesviruses: role of viral glycoproteins in neuroinvasion and transneuronal spread. , 2003, Virus Research.
[88] M. Bukrinsky,et al. The B-Oligomer of Pertussis Toxin Deactivates Cc Chemokine Receptor 5 and Blocks Entry of M-Tropic HIV-1 Strains , 1999, The Journal of experimental medicine.
[89] Charles R. M. Bangham,et al. Human T-Lymphotropic Virus-1 Visualized at the Virological Synapse by Electron Tomography , 2008, PloS one.
[90] T. Lentz,et al. Rabies virus entry at the neuromuscular junction in nerve–muscle cocultures , 2000, Muscle & nerve.
[91] P. Cossart,et al. Actin-based motility of vaccinia virus , 1995, Nature.
[92] R. Cheynier,et al. The majority of human immunodeficiency virus type 1 particles present within splenic germinal centres are produced locally. , 2005, The Journal of general virology.
[93] H. Kräusslich,et al. Interactions of human retroviruses with the host cell cytoskeleton. , 2006, Current opinion in microbiology.
[94] H. Favoreel,et al. Herpesvirus interference with virus-specific antibodies: bridging antibodies, internalizing antibodies, and hiding from antibodies. , 2006, Veterinary microbiology.
[95] D. Phillips,et al. The role of cell-to-cell transmission in HIV infection. , 1994, AIDS.
[96] R. Koup,et al. Infection of Specific Dendritic Cells by CCR5-Tropic Human Immunodeficiency Virus Type 1 Promotes Cell-Mediated Transmission of Virus Resistant to Broadly Neutralizing Antibodies , 2004, Journal of Virology.
[97] Eva Chung,et al. HIV-1 envelope protein binds to and signals through integrin α4β7, the gut mucosal homing receptor for peripheral T cells , 2008, Nature Immunology.
[98] M. Malim,et al. Isolation of a human gene that inhibits HIV-1 infection and is suppressed by the viral Vif protein , 2002, Nature.
[99] L. Larocca,et al. Characterization of cell death pathways in human immunodeficiency virus-associated encephalitis. , 2005, The American journal of pathology.
[100] A. Dautry‐Varsat,et al. Human immunodeficiency virus type-1 infection impairs the formation of the immunological synapse. , 2006, Immunity.
[101] C. Grose,et al. Membrane fusion mediated by herpesvirus glycoproteins: the paradigm of varicella‐zoster virus , 2003, Reviews in medical virology.
[102] M. Law,et al. Ligand-induced and nonfusogenic dissolution of a viral membrane. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[103] F. Baldanti,et al. Human Cytomegalovirus Replicates Abortively in Polymorphonuclear Leukocytes after Transfer from Infected Endothelial Cells via Transient Microfusion Events , 2000, Journal of Virology.
[104] Yuetsu Tanaka,et al. Engagement of specific T-cell surface molecules regulates cytoskeletal polarization in HTLV-1-infected lymphocytes. , 2005, Blood.
[105] Mitsuhiro Osame,et al. Spread of HTLV-I Between Lymphocytes by Virus-Induced Polarization of the Cytoskeleton , 2003, Science.
[106] H. Klenk,et al. Polarized glycoprotein targeting affects the spread of measles virus in vitro and in vivo. , 2004, The Journal of general virology.
[107] Hans-Hermann Gerdes,et al. Nanotubular Highways for Intercellular Organelle Transport , 2004, Science.
[108] Charlton Km,et al. Experimental rabies in skunks: immunofluorescence light and electron microscopic studies. , 1979 .
[109] S. Goff,et al. Retroviral proteins that interact with the host cell cytoskeleton. , 2007, Current opinion in immunology.
[110] S. Campbell,et al. Measles Virus Infection and Replication in Undifferentiated and Differentiated Human Neuronal Cells in Culture , 1998, Journal of Virology.
[111] B. Chain,et al. Understanding HSV‐1 entry glycoproteins , 2007, Reviews in medical virology.
[112] H. V. van Leeuwen,et al. Evidence of a Role for Nonmuscle Myosin II in Herpes Simplex Virus Type 1 Egress , 2002, Journal of Virology.
[113] L. Enquist,et al. Directional spread of an α-herpesvirus in the nervous system , 2002 .
[114] E. Avitabile,et al. The multipartite system that mediates entry of herpes simplex virus into the cell , 2007, Reviews in medical virology.
[115] Yingyao Zhou,et al. Identification of novel therapeutic targets for HIV infection through functional genomic cDNA screening. , 2007, Virology.
[116] R I Shrager,et al. HIV-1 infection kinetics in tissue cultures. , 1996, Mathematical biosciences.
[117] David C Tscharke,et al. Dermal infection with vaccinia virus reveals roles for virus proteins not seen using other inoculation routes. , 2002, The Journal of general virology.
[118] Ari Helenius,et al. How Viruses Enter Animal Cells , 2004, Science.
[119] W. P. Duprex,et al. Morbilliviruses and human disease , 2006, The Journal of pathology.
[120] G. Sukhikh,et al. Cell-to-cell cross-talk between mesenchymal stem cells and cardiomyocytes in co-culture , 2007, Journal of cellular and molecular medicine.
[121] J. McKeating,et al. Hepatitis C virus cell‐cell transmission in hepatoma cells in the presence of neutralizing antibodies , 2007, Hepatology.
[122] Z. Grossman,et al. Multiple modes of cellular activation and virus transmission in HIV infection: a role for chronically and latently infected cells in sustaining viral replication. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[123] M. Takeda,et al. Measles virus: cellular receptors, tropism and pathogenesis. , 2006, The Journal of general virology.
[124] Claire Hivroz,et al. ZAP‐70 kinase regulates HIV cell‐to‐cell spread and virological synapse formation , 2007, The EMBO journal.
[125] D. Dimitrov,et al. Virus entry: molecular mechanisms and biomedical applications , 2004, Nature Reviews Microbiology.
[126] James M. Anderson,et al. Multinucleated giant cells , 2000, Current opinion in hematology.
[127] B. Moss. Poxvirus entry and membrane fusion. , 2006, Virology.
[128] P. Cossart,et al. Actin-based motility of intracellular pathogens. , 2005, Current opinion in microbiology.
[129] David C. Johnson,et al. A Herpes Simplex Virus gD-YFP Fusion Glycoprotein Is Transported Separately from Viral Capsids in Neuronal Axons , 2007, Journal of Virology.
[130] H. Gerdes,et al. Tunneling nanotubes: A new route for the exchange of components between animal cells , 2007, FEBS letters.
[131] W. Mothes,et al. Retroviruses can establish filopodial bridges for efficient cell-to-cell transmission , 2007, Nature Cell Biology.
[132] T. Geijtenbeek,et al. Viral piracy: HIV-1 targets dendritic cells for transmission. , 2006, Current HIV research.
[133] K. Simons,et al. A functional barrier to movement of lipids in polarized neurons , 1992, Nature.
[134] F. Frischknecht,et al. Vaccinia Virus-Induced Cell Motility Requires F11L-Mediated Inhibition of RhoA Signaling , 2006, Science.
[135] W. Hübner,et al. Predominant Mode of Human Immunodeficiency Virus Transfer between T Cells Is Mediated by Sustained Env-Dependent Neutralization-Resistant Virological Synapses , 2007, Journal of Virology.
[136] T. Geijtenbeek,et al. DC-SIGN–mediated Infectious Synapse Formation Enhances X4 HIV-1 Transmission from Dendritic Cells to T Cells , 2004, The Journal of experimental medicine.
[137] J Dunlop,et al. Another look. , 1987, Nursing.
[138] G. Griffiths,et al. Vaccinia virus: a model system for actin-membrane interactions. , 1996, Journal of cell science.
[139] D. Adriaensen,et al. Cytoskeletal rearrangements and cell extensions induced by the US3 kinase of an alphaherpesvirus are associated with enhanced spread. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[140] M. Tremblay,et al. Plunder and Stowaways: Incorporation of Cellular Proteins by Enveloped Viruses , 2005, Journal of Virology.
[141] Q. Sattentau,et al. HIV-1 attachment: another look. , 1999, Trends in microbiology.
[142] M. Way,et al. Surfing pathogens and the lessons learned for actin polymerization. , 2001, Trends in cell biology.