Molecular mechanisms of Ebola virus pathogenesis: focus on cell death
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C. Agrati | G. Ippolito | A. di Caro | M. Capobianchi | M. Piacentini | N. Petrosillo | M Piacentini | A. Caro | L. Falasca | L Falasca | C Agrati | N Petrosillo | A Di Caro | M R Capobianchi | G Ippolito | Giuseppe Ippolito
[1] P. Jahrling,et al. Pathogenesis of Ebola hemorrhagic fever in cynomolgus macaques: evidence that dendritic cells are early and sustained targets of infection. , 2003, The American journal of pathology.
[2] Jay B. Varkey,et al. Human Ebola virus infection results in substantial immune activation , 2015, Proceedings of the National Academy of Sciences.
[3] P. Jahrling,et al. Lethal experimental infections of rhesus monkeys by aerosolized Ebola virus. , 1995, International journal of experimental pathology.
[4] P. Rollin,et al. Markedly elevated levels of interferon (IFN)-γ, IFN-α, interleukin (IL)-2, IL-10, and tumor necrosis factor-α associated with fatal Ebola virus infection , 1999 .
[5] H. Feldmann,et al. Oligomerization of Ebola Virus VP40 Is Essential for Particle Morphogenesis and Regulation of Viral Transcription , 2010, Journal of Virology.
[6] R. Bartenschlager,et al. Divergent Roles of Autophagy in Virus Infection , 2013, Cells.
[7] M. Bray,et al. Ebola hemorrhagic fever and septic shock. , 2003, The Journal of infectious diseases.
[8] L. Platanias. Introduction: interferon signals: what is classical and what is nonclassical? , 2005, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[9] R. Xavier,et al. Autophagy and checkpoints for intracellular pathogen defense , 2015, Current opinion in gastroenterology.
[10] M. Georges-Courbot,et al. Inflammatory responses in Ebola virus‐infected patients , 2002, Clinical and experimental immunology.
[11] B. Cookson,et al. Apoptosis, Pyroptosis, and Necrosis: Mechanistic Description of Dead and Dying Eukaryotic Cells , 2005, Infection and Immunity.
[12] P. Bieniasz,et al. Broad-Spectrum Inhibition of Retroviral and Filoviral Particle Release by Tetherin , 2008, Journal of Virology.
[13] L. Galluzzi,et al. Necroptosis: A Specialized Pathway of Programmed Necrosis , 2008, Cell.
[14] V. Deretic. Autophagy in immunity and cell‐autonomous defense against intracellular microbes , 2011, Immunological reviews.
[15] Timothy F. Booth,et al. The Organisation of Ebola Virus Reveals a Capacity for Extensive, Modular Polyploidy , 2012, PloS one.
[16] Howard R. Petty,et al. Ebola Virus Secretory Glycoprotein (sGP) Diminishes FcγRIIIB-to-CR3 Proximity on Neutrophils1 , 2000, The Journal of Immunology.
[17] V. Deretic,et al. Autophagy pathway intersects with HIV-1 biosynthesis and regulates viral yields in macrophages , 2009, The Journal of cell biology.
[18] M. Bachmann,et al. The Bidirectional Crosstalk between Human Dendritic Cells and Natural Killer Cells , 2011, Journal of Innate Immunity.
[19] Wei Zhang,et al. HSV-1 ICP34.5 confers neurovirulence by targeting the Beclin 1 autophagy protein. , 2007, Cell host & microbe.
[20] Steven B. Bradfute,et al. Lymphocyte death in a mouse model of Ebola virus infection. , 2007, The Journal of infectious diseases.
[21] Daniel Bausch,et al. Analysis of Human Peripheral Blood Samples from Fatal and Nonfatal Cases of Ebola (Sudan) Hemorrhagic Fever: Cellular Responses, Virus Load, and Nitric Oxide Levels , 2004, Journal of Virology.
[22] P. Rollin,et al. Cytokine and chemokine expression in humans infected with Sudan Ebola virus. , 2007, The Journal of infectious diseases.
[23] R. Compans,et al. Less Is More: Ebola Virus Surface Glycoprotein Expression Levels Regulate Virus Production and Infectivity , 2014, Journal of Virology.
[24] J. Menéndez,et al. Autophagy is an inflammation-related defensive mechanism against disease. , 2014, Advances in experimental medicine and biology.
[25] P. Jahrling,et al. Depletion of peripheral blood T lymphocytes and NK cells during the course of ebola hemorrhagic Fever in cynomolgus macaques. , 2004, Viral immunology.
[26] E. Ikonen,et al. Cholesterol Dependence of Collagen and Echovirus 1 Trafficking along the Novel α2β1 Integrin Internalization Pathway , 2013, PloS one.
[27] Kathryn L. Schornberg,et al. Cathepsin Cleavage Potentiates the Ebola Virus Glycoprotein To Undergo a Subsequent Fusion-Relevant Conformational Change , 2011, Journal of Virology.
[28] Minsoo Kim,et al. Cell death and infection: A double-edged sword for host and pathogen survival , 2011, The Journal of cell biology.
[29] Gabriele Neumann,et al. Ebolavirus Is Internalized into Host Cells via Macropinocytosis in a Viral Glycoprotein-Dependent Manner , 2010, PLoS pathogens.
[30] R. Compans,et al. Antigenic Subversion: A Novel Mechanism of Host Immune Evasion by Ebola Virus , 2012, PLoS pathogens.
[31] A. Kolokoltsov,et al. Cellular Entry of Ebola Virus Involves Uptake by a Macropinocytosis-Like Mechanism and Subsequent Trafficking through Early and Late Endosomes , 2010, PLoS pathogens.
[32] Vanessa R Melanson,et al. Ebola virus infection induces irregular dendritic cell gene expression. , 2015, Viral immunology.
[33] P. Debré,et al. Defective humoral responses and extensive intravascular apoptosis are associated with fatal outcome in Ebola virus-infected patients , 1999, Nature Medicine.
[34] H. Young,et al. Role of Natural Killer Cells in Innate Protection against Lethal Ebola Virus Infection , 2004, The Journal of experimental medicine.
[35] P. Rollin,et al. Tissue and cellular tropism, pathology and pathogenesis of Ebola and Marburg viruses , 2015, The Journal of pathology.
[36] A. Kolokoltsov,et al. Phosphoinositide-3 Kinase-Akt Pathway Controls Cellular Entry of Ebola Virus , 2008, PLoS pathogens.
[37] D. Burton,et al. Ebola Virion Attachment and Entry into Human Macrophages Profoundly Effects Early Cellular Gene Expression , 2011, PLoS neglected tropical diseases.
[38] H. Petty,et al. Ebola virus secretory glycoprotein (sGP) diminishes Fc gamma RIIIB-to-CR3 proximity on neutrophils. , 2000, Journal of immunology.
[39] W. Sundquist,et al. An interferon-alpha-induced tethering mechanism inhibits HIV-1 and Ebola virus particle release but is counteracted by the HIV-1 Vpu protein. , 2007, Cell host & microbe.
[40] X. Qiu,et al. Immune Parameters Correlate with Protection Against Ebola Virus Infection in Rodents and Nonhuman Primates , 2012, Science Translational Medicine.
[41] P. Vandenabeele,et al. Molecular mechanisms of necroptosis: an ordered cellular explosion , 2010, Nature Reviews Molecular Cell Biology.
[42] J. Dye,et al. Ebola virus entry requires the cholesterol transporter Niemann-Pick C1 , 2011, Nature.
[43] B. Pulendran,et al. Cutting Edge: Impairment of Dendritic Cells and Adaptive Immunity by Ebola and Lassa Viruses1 , 2003, The Journal of Immunology.
[44] T. Bell,et al. Characterization of clinical and immunological parameters during Ebola virus infection of rhesus macaques. , 2015, Viral immunology.
[45] G. Olinger,et al. Protective Role of Cytotoxic T Lymphocytes in Filovirus Hemorrhagic Fever , 2011, Journal of biomedicine & biotechnology.
[46] Yi Lu,et al. Systematic Review and Meta-Analysis on the Association between Outpatient Statins Use and Infectious Disease-Related Mortality , 2012, PloS one.
[47] G. Ippolito,et al. Viral hemorrhagic fevers: advancing the level of treatment , 2012, BMC Medicine.
[48] M. Goldsmith,et al. Association of the Caveola Vesicular System with Cellular Entry by Filoviruses , 2002, Journal of Virology.
[49] R. Ahmed,et al. Monocyte-Derived Human Macrophages and Peripheral Blood Mononuclear Cells Infected with Ebola Virus Secrete MIP-1α and TNF-α and Inhibit Poly-IC-Induced IFN-α in Vitro , 2001 .
[50] V. Volchkov,et al. Shed GP of Ebola Virus Triggers Immune Activation and Increased Vascular Permeability , 2014, PLoS pathogens.
[51] S. Paessler,et al. Pathogenesis of the viral hemorrhagic fevers. , 2013, Annual review of pathology.
[52] E. Ryabchikova,et al. An analysis of features of pathogenesis in two animal models of Ebola virus infection. , 1999, The Journal of infectious diseases.
[53] Keith Meyer,et al. Ebola virus glycoprotein-mediated anoikis of primary human cardiac microvascular endothelial cells. , 2004, Virology.
[54] C. Basler,et al. Ebola Virus Protein VP35 Impairs the Function of Interferon Regulatory Factor-Activating Kinases IKKε and TBK-1 , 2009, Journal of Virology.
[55] D. Swenson,et al. Induction of Humoral and CD8+ T Cell Responses Are Required for Protection against Lethal Ebola Virus Infection1 , 2005, The Journal of Immunology.
[56] E. Mühlberger,et al. Ebola Virus VP35 Antagonizes PKR Activity through Its C-Terminal Interferon Inhibitory Domain , 2009, Journal of Virology.
[57] M. Manns,et al. The clinically approved drugs amiodarone, dronedarone and verapamil inhibit filovirus cell entry , 2014, The Journal of antimicrobial chemotherapy.
[58] M. Koopmans,et al. Ebola virus disease: a review on epidemiology, symptoms, treatment and pathogenesis. , 2014, The Netherlands journal of medicine.
[59] A. Sanchez. Analysis of filovirus entry into vero e6 cells, using inhibitors of endocytosis, endosomal acidification, structural integrity, and cathepsin (B and L) activity. , 2007, The Journal of infectious diseases.
[60] R. MelansonVanessa,et al. Ebola virus infection induces irregular dendritic cell gene expression. , 2015 .
[61] S. Kudchodkar,et al. Viruses and autophagy , 2009, Reviews in medical virology.
[62] Joshua C. Johnson,et al. Zaire Ebola virus entry into human dendritic cells is insensitive to cathepsin L inhibition , 2010, Cellular microbiology.
[63] Thomas Hoenen,et al. Ebola virus: unravelling pathogenesis to combat a deadly disease. , 2006, Trends in molecular medicine.
[64] A. Sanchez,et al. Distinct cellular interactions of secreted and transmembrane Ebola virus glycoproteins. , 1998, Science.
[65] A. Moretta,et al. NK/DC crosstalk in anti-viral response. , 2012, Advances in experimental medicine and biology.
[66] Ke Gong,et al. Autophagy-related Gene 7 (ATG7) and Reactive Oxygen Species/Extracellular Signal-regulated Kinase Regulate Tetrandrine-induced Autophagy in Human Hepatocellular Carcinoma* , 2012, The Journal of Biological Chemistry.
[67] L. Ivashkiv,et al. Regulation of type I interferon responses , 2013, Nature Reviews Immunology.
[68] H. Ebihara,et al. Ebola Virus Does Not Block Apoptotic Signaling Pathways , 2013, Journal of Virology.
[69] Rachel S. G. Sealfon,et al. Nomenclature- and Database-Compatible Names for the Two Ebola Virus Variants that Emerged in Guinea and the Democratic Republic of the Congo in 2014 , 2014, Viruses.
[70] P. Bates,et al. Tetherin-mediated restriction of filovirus budding is antagonized by the Ebola glycoprotein , 2009, Proceedings of the National Academy of Sciences.
[71] D. Matthews,et al. Elucidation of the Ebola virus VP24 cellular interactome and disruption of virus biology through targeted inhibition of host-cell protein function. , 2014, Journal of proteome research.
[72] A. B. Will,et al. Lipid Raft Microdomains: A Gateway for Compartmentalized Trafficking of Ebola and , 2002 .
[73] N. Wauquier,et al. Human Fatal Zaire Ebola Virus Infection Is Associated with an Aberrant Innate Immunity and with Massive Lymphocyte Apoptosis , 2010, PLoS neglected tropical diseases.
[74] G. Ruthel,et al. Ebola and Marburg viruses replicate in monocyte-derived dendritic cells without inducing the production of cytokines and full maturation. , 2003, The Journal of infectious diseases.
[75] J. Ou,et al. Autophagy in viral replication and pathogenesis , 2010, Molecules and cells.
[76] J. Dye,et al. Persistent immune responses after Ebola virus infection. , 2013, The New England journal of medicine.
[77] G. Churchill,et al. Nicotinic Acid Adenine Dinucleotide Phosphate (NAADP) Regulates Autophagy in Cultured Astrocytes* , 2011, The Journal of Biological Chemistry.
[78] P. Zhou,et al. Characterisation of novel microRNAs in the Black flying fox (Pteropus alecto) by deep sequencing , 2014, BMC Genomics.
[79] N. Sullivan,et al. Correlates of protective immunity for Ebola vaccines: implications for regulatory approval by the animal rule , 2009, Nature Reviews Microbiology.
[80] A. Kolokoltsov,et al. The Tyro3 Receptor Kinase Axl Enhances Macropinocytosis of Zaire Ebolavirus , 2010, Journal of Virology.
[81] H. Feldmann,et al. Effects of Ebola Virus Glycoproteins on Endothelial Cell Activation and Barrier Function , 2005, Journal of Virology.
[82] N. Owusu-Boaitey,et al. Selective autophagy: xenophagy. , 2015, Methods.
[83] M. Bray,et al. Haematological, biochemical and coagulation changes in mice, guinea-pigs and monkeys infected with a mouse-adapted variant of Ebola Zaire virus. , 2001, Journal of comparative pathology.
[84] P. Jahrling,et al. Mechanisms underlying coagulation abnormalities in ebola hemorrhagic fever: overexpression of tissue factor in primate monocytes/macrophages is a key event. , 2003, The Journal of infectious diseases.
[85] Stephan Günther,et al. Emergence of Zaire Ebola virus disease in Guinea. , 2014, The New England journal of medicine.
[86] T. Noda,et al. Ebola virus (EBOV) VP24 inhibits transcription and replication of the EBOV genome. , 2007, The Journal of infectious diseases.
[87] H. Feldmann,et al. Ebola haemorrhagic fever , 2011, The Lancet.
[88] D. Green,et al. Toll-like receptor signalling in macrophages links the autophagy pathway to phagocytosis , 2007, Nature.
[89] M. Colombo,et al. Rab7 is required for the normal progression of the autophagic pathway in mammalian cells , 2004, Journal of Cell Science.
[90] R. Ahmed,et al. Protection from lethal infection is determined by innate immune responses in a mouse model of Ebola virus infection. , 2003, Virology.
[91] P. Rollin,et al. Markedly elevated levels of interferon (IFN)-gamma, IFN-alpha, interleukin (IL)-2, IL-10, and tumor necrosis factor-alpha associated with fatal Ebola virus infection. , 1999, The Journal of infectious diseases.
[92] A. Sanchez,et al. Ebola Virus Selectively Inhibits Responses to Interferons, but Not to Interleukin-1β, in Endothelial Cells , 1999, Journal of Virology.
[93] H. Feldmann,et al. Ebola Virus Modulates Transforming Growth Factor β Signaling and Cellular Markers of Mesenchyme-Like Transition in Hepatocytes , 2014, Journal of Virology.
[94] Shinji Watanabe,et al. Downregulation of beta1 integrins by Ebola virus glycoprotein: implication for virus entry. , 2000, Virology.
[95] G. Ruthel,et al. NKp30‐dependent cytolysis of filovirus‐infected human dendritic cells , 2007, Cellular microbiology.
[96] H. Feldmann,et al. Ebola virus enters host cells by macropinocytosis and clathrin-mediated endocytosis. , 2011, The Journal of infectious diseases.
[97] A. Ansari. Clinical features and pathobiology of Ebolavirus infection. , 2014, Journal of autoimmunity.
[98] C. Natanson,et al. The evolving experience with therapeutic TNF inhibition in sepsis: considering the potential influence of risk of death , 2011, Expert opinion on investigational drugs.
[99] C. Basler,et al. Ebola Virus VP24 Proteins Inhibit the Interaction of NPI-1 Subfamily Karyopherin α Proteins with Activated STAT1 , 2007, Journal of Virology.
[100] R. Ahmed,et al. Monocyte-derived human macrophages and peripheral blood mononuclear cells infected with ebola virus secrete MIP-1alpha and TNF-alpha and inhibit poly-IC-induced IFN-alpha in vitro. , 2001, Virology.
[101] A. Chuansumrit,et al. Serum ferritin levels in children with dengue infection. , 2008, The Southeast Asian journal of tropical medicine and public health.
[102] V. Volchkov,et al. The Ebola virus VP35 protein functions as a type I IFN antagonist. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[103] Y. Yazdanpanah,et al. Treatment of Ebola virus disease , 2014, Intensive Care Medicine.
[104] J. Dye,et al. Ebola virus entry requires the host‐programmed recognition of an intracellular receptor , 2012, The EMBO journal.
[105] W. Maury,et al. Filovirus Entry: A Novelty in the Viral Fusion World , 2012, Viruses.
[106] A. Thomas,et al. Distribution of Hydrophobic Residues Is Crucial for the Fusogenic Properties of the Ebola Virus GP2 Fusion Peptide , 2004, Journal of Virology.
[107] R. Koup,et al. The Lack of Maturation of Ebola Virus-Infected Dendritic Cells Results from the Cooperative Effect of at Least Two Viral Domains , 2013, Journal of Virology.
[108] Steven B. Bradfute,et al. Functional CD8+ T Cell Responses in Lethal Ebola Virus Infection1 , 2008, The Journal of Immunology.
[109] Timothy D. Flietstra,et al. Ebola hemorrhagic Fever: novel biomarker correlates of clinical outcome. , 2014, The Journal of infectious diseases.
[110] Y. Sakurai,et al. Two-pore channels control Ebola virus host cell entry and are drug targets for disease treatment , 2015, Science.
[111] Jeffrey E. Lee,et al. The Secret Life of Viral Entry Glycoproteins: Moonlighting in Immune Evasion , 2013, PLoS pathogens.
[112] P. Jahrling,et al. Proinflammatory response during Ebola virus infection of primate models: possible involvement of the tumor necrosis factor receptor superfamily. , 2002, Immunology letters.
[113] U. Erkorkmaz,et al. Increased serum ferritin levels in patients with Crimean-Congo hemorrhagic fever: can it be a new severity criterion? , 2010, International journal of infectious diseases : IJID : official publication of the International Society for Infectious Diseases.
[114] Jen-Ren Wang,et al. Enterovirus 71-induced autophagy increases viral replication and pathogenesis in a suckling mouse model , 2014, Journal of Biomedical Science.
[115] L. Hutwagner,et al. Pathogenic potential of filoviruses: role of geographic origin of primate host and virus strain. , 1992, The Journal of infectious diseases.
[116] S. Ryter,et al. Emerging role of selective autophagy in human diseases , 2014, Front. Pharmacol..
[117] N. Sullivan,et al. Camouflage and Misdirection: The Full-On Assault of Ebola Virus Disease , 2014, Cell.
[118] K. Chandran,et al. A Mutation in the Ebola Virus Envelope Glycoprotein Restricts Viral Entry in a Host Species- and Cell-Type-Specific Manner , 2013, Journal of Virology.