against Dendritic Cells Infected with Dengue T Cells δ γ Response of Primary Human Type I IFNs and IL-18 Regulate the Antiviral
暂无分享,去创建一个
[1] S. Halstead,et al. Simplified plaque reduction neutralization assay for dengue viruses by semimicro methods in BHK-21 cells: comparison of the BHK suspension test with standard plaque reduction neutralization , 1985, Journal of clinical microbiology.
[2] F. Ennis,et al. Dengue virus-specific cross-reactive CD8+ human cytotoxic T lymphocytes , 1989, Journal of virology.
[3] C. Katlama,et al. T cell receptor gamma/delta+ lymphocyte subsets during HIV infection. , 1989, Clinical and experimental immunology.
[4] P. Paoli,et al. γδ T Cell Receptor-Bearing Lymphocytes during Epstein-Barr Virus Infection , 1990 .
[5] G. Santini,et al. Gamma delta T cell receptor-bearing lymphocytes during Epstein-Barr virus infection. , 1990, The Journal of infectious diseases.
[6] M. Brenner,et al. Recognition and destruction of virus-infected cells by human gamma delta CTL. , 1994, Journal of immunology.
[7] T. Tanimoto,et al. Interferon-gamma-inducing factor enhances T helper 1 cytokine production by stimulated human T cells: synergism with interleukin-12 for interferon-gamma production. , 1996, European journal of immunology.
[8] T. Tanimoto,et al. Interferon‐γ‐inducing factor enhances T helper 1 cytokine production by stimulated human T cells: synergism with interleukin‐12 for interferon‐γ production , 1996 .
[9] V. Barnaba,et al. Dynamics of intra‐hepatic lymphocytes in chronic hepatitis C: enrichment for Vα24+ T cells and rapid elimination of effector cells by apoptosis , 1998, European journal of immunology.
[10] K. Shuai,et al. IL-15 enhances the response of human gamma delta T cells to nonpeptide [correction of nonpetide] microbial antigens. , 1998, Journal of immunology.
[11] B. Seliger,et al. Dengue virus infection of human endothelial cells leads to chemokine production, complement activation, and apoptosis. , 1998, Journal of immunology.
[12] D. Ikle,et al. Early preferential stimulation of gamma delta T cells by TNF-alpha. , 1998, Journal of immunology.
[13] M Kurimoto,et al. Influenza A virus-induced IFN-alpha/beta and IL-18 synergistically enhance IFN-gamma gene expression in human T cells. , 1998, Journal of immunology.
[14] J. Kimpen,et al. T cell subset analysis in peripheral blood of children with RSV bronchiolitis. , 1998, Scandinavian journal of infectious diseases.
[15] H. Etlinger,et al. the Journal of Immunology , 2006 .
[16] C. Dinarello. IL-18: A TH1-inducing, proinflammatory cytokine and new member of the IL-1 family. , 1999, The Journal of allergy and clinical immunology.
[17] M. Bonneville,et al. Implication of gammadelta T cells in the human immune response to cytomegalovirus. , 1999, The Journal of clinical investigation.
[18] M. Bonneville,et al. Implication of γδ T cells in the human immune response to cytomegalovirus , 1999 .
[19] A. Nisalak,et al. Early CD69 expression on peripheral blood lymphocytes from children with dengue hemorrhagic fever. , 1999, The Journal of infectious diseases.
[20] IFN-α and IL-12 Induce IL-18 Receptor Gene Expression in Human NK and T Cells1 , 2000, The Journal of Immunology.
[21] F. Ennis,et al. Human Dendritic Cells Are Activated by Dengue Virus Infection: Enhancement by Gamma Interferon and Implications for Disease Pathogenesis , 2001, Journal of Virology.
[22] V. Mehta,et al. ATP-stimulated Release of Interleukin (IL)-1β and IL-18 Requires Priming by Lipopolysaccharide and Is Independent of Caspase-1 Cleavage* , 2001, The Journal of Biological Chemistry.
[23] D. Chang,et al. Infection of Human Dendritic Cells by Dengue Virus Causes Cell Maturation and Cytokine Production1 , 2001, The Journal of Immunology.
[24] A. Mustafa,et al. Elevated levels of interleukin-13 and IL-18 in patients with dengue hemorrhagic fever. , 2001, FEMS immunology and medical microbiology.
[25] G. Fantuzzi,et al. Interleukin-18 and host defense against infection. , 2003, The Journal of infectious diseases.
[26] E. Kretzschmar,et al. Polyinosinic‐polycytidylic acid‐mediated stimulation of human γδ T cells via CD11c+ dendritic cell‐derived type I interferons , 2004 .
[27] E. Kretzschmar,et al. Polyinosinic-polycytidylic acid-mediated stimulation of human gammadelta T cells via CD11c dendritic cell-derived type I interferons. , 2004, Immunology.
[28] C. Agrati,et al. Antiviral reactivities of γδ T cells , 2005, Microbes and Infection.
[29] M. Rogers,et al. Alkylamines cause Vgamma9Vdelta2 T-cell activation and proliferation by inhibiting the mevalonate pathway. , 2006, Blood.
[30] J. Sung,et al. Anti–Severe Acute Respiratory Syndrome Coronavirus Immune Responses: The Role Played by Vγ9Vδ2 T Cells , 2006, The Journal of infectious diseases.
[31] M. Rogers,et al. Alkylamines cause Vγ9Vδ2 T-cell activation and proliferation by inhibiting the mevalonate pathway , 2006 .
[32] Y. Aizawa,et al. Type I IFN-mediated enhancement of anti-leukemic cytotoxicity of γδ T cells expanded from peripheral blood cells by stimulation with zoledronate , 2006 .
[33] Y. Aizawa,et al. Type I IFN-mediated enhancement of anti-leukemic cytotoxicity of gammadelta T cells expanded from peripheral blood cells by stimulation with zoledronate. , 2006, Cytotherapy.
[34] L. Paša-Tolić,et al. Preferential recognition of a microbial metabolite by human Vγ2Vδ2 T cells , 2007 .
[35] L. Paša-Tolić,et al. Preferential recognition of a microbial metabolite by human Vgamma2Vdelta2 T cells. , 2007, International immunology.
[36] Michael G. Katze,et al. Distinct RIG-I and MDA5 Signaling by RNA Viruses in Innate Immunity , 2007, Journal of Virology.
[37] A. Rubartelli,et al. ATP is released by monocytes stimulated with pathogen-sensing receptor ligands and induces IL-1β and IL-18 secretion in an autocrine way , 2008, Proceedings of the National Academy of Sciences.
[38] H. Oberg,et al. Innate immune functions of human gammadelta T cells. , 2008, Immunobiology.
[39] S. Allain,et al. Dendritic Cells TLR-Activated Myeloid and Plasmacytoid 2 T Cells by δ 9 V γ Responses of Human V γ Early Triggering of Exclusive IFN , 2009 .
[40] Albert D. M. E. Osterhaus,et al. Dengue Virus Pathogenesis: an Integrated View , 2009, Clinical Microbiology Reviews.
[41] J. Peiris,et al. Phosphoantigen-Expanded Human γδ T Cells Display Potent Cytotoxicity against Monocyte-Derived Macrophages Infected with Human and Avian Influenza Viruses , 2009, The Journal of infectious diseases.
[42] Kevin R Porter,et al. Functional characterization of ex vivo blood myeloid and plasmacytoid dendritic cells after infection with dengue virus. , 2009, Virology.
[43] J. Casanova,et al. Human CD14dim Monocytes Patrol and Sense Nucleic Acids and Viruses via TLR7 and TLR8 Receptors , 2010, Immunity.
[44] G. Screaton,et al. Immunodominant T-cell responses to dengue virus NS3 are associated with DHF , 2010, Proceedings of the National Academy of Sciences.
[45] E. Azeredo,et al. Differential regulation of toll‐like receptor‐2, toll‐like receptor‐4, CD16 and human leucocyte antigen‐DR on peripheral blood monocytes during mild and severe dengue fever , 2010, Immunology.
[46] E. Pamer,et al. Monocyte recruitment during infection and inflammation , 2011, Nature Reviews Immunology.
[47] Cameron P Simmons,et al. The pathogenesis of dengue. , 2011, Vaccine.
[48] B. Ryffel,et al. IFN-γ Production Depends on IL-12 and IL-18 Combined Action and Mediates Host Resistance to Dengue Virus Infection in a Nitric Oxide-Dependent Manner , 2011, PLoS neglected tropical diseases.
[49] Kong-Peng Lam,et al. RIG-I, MDA5 and TLR3 Synergistically Play an Important Role in Restriction of Dengue Virus Infection , 2011, PLoS neglected tropical diseases.
[50] H. Okamura,et al. Involvement of CD56brightCD11c+ Cells in IL-18–Mediated Expansion of Human γδ T Cells , 2011, The Journal of Immunology.
[51] B. Murphy,et al. Immune response to dengue virus and prospects for a vaccine. , 2011, Annual review of immunology.
[52] J. Moreau,et al. Antibody-dependent anti-cytomegalovirus activity of human γδ T cells expressing CD16 (FcγRIIIa). , 2012, Blood.
[53] M. Idzko,et al. IL‐18 associates to microvesicles shed from human macrophages by a LPS/TLR‐4 independent mechanism in response to P2X receptor stimulation , 2012, European journal of immunology.
[54] C. Agrati,et al. Interferon-α Improves Phosphoantigen-Induced Vγ9Vδ2 T-Cells Interferon-γ Production during Chronic HCV Infection , 2012, PloS one.
[55] G. Lauvau,et al. Inflammatory monocytes activate memory CD8(+) T and innate NK lymphocytes independent of cognate antigen during microbial pathogen invasion. , 2012, Immunity.
[56] J. Tschopp,et al. NLRC4 inflammasomes in dendritic cells regulate noncognate effector function by memory CD8+ T cells , 2012, Nature Immunology.
[57] K. Fink,et al. Susceptibility and Response of Human Blood Monocyte Subsets to Primary Dengue Virus Infection , 2012, PLoS ONE.
[58] Ravi V. Kolla,et al. Comprehensive analysis of dengue virus-specific responses supports an HLA-linked protective role for CD8+ T cells , 2013, Proceedings of the National Academy of Sciences.
[59] P. Desprès,et al. Dengue Virus Activates Membrane TRAIL Relocalization and IFN-α Production by Human Plasmacytoid Dendritic Cells In Vitro and In Vivo , 2013, PLoS neglected tropical diseases.
[60] M. Ng,et al. The Combination of Type I IFN, TNF-α, and Cell Surface Receptor Engagement with Dendritic Cells Enables NK Cells To Overcome Immune Evasion by Dengue Virus , 2014, The Journal of Immunology.