Trypanosoma cruzi Infection Is Enhanced by Vector Saliva through Immunosuppressant Mechanisms Mediated by Lysophosphatidylcholine
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T. Souto-Padrón | R. Figueiredo | M. Bozza | C. Takiya | I. Almeida | M. Silva-Neto | B. Porto | G. Atella | A. Ferreira-Pereira | R. D. Mesquita | A. Báfica | A. Carneiro | A. Lopes | Danielle P. Vieira | Felipe Gazos-Lopes | Aurélio V. Graça-Souza | R. Mesquita
[1] C. Chagas. [New type of human trypanosomiasis]. , 2009, Bulletin de la Societe de pathologie exotique.
[2] Tatiana P. Dutra,et al. Heme Induces Neutrophil Migration and Reactive Oxygen Species Generation through Signaling Pathways Characteristic of Chemotactic Receptors* , 2007, Journal of Biological Chemistry.
[3] R. Tarleton. Immune system recognition of Trypanosoma cruzi. , 2007, Current opinion in immunology.
[4] J. Andersen,et al. 133 Prostaglandin E2 is a Major Inhibitor of Dendritic Cell Maturation and Function in Ixodes Scapularis Saliva , 2007 .
[5] M. Rogers,et al. Leishmania Manipulation of Sand Fly Feeding Behavior Results in Enhanced Transmission , 2007, PLoS pathogens.
[6] J. Berman,et al. Thromboxane A2 is a key regulator of pathogenesis during Trypanosoma cruzi infection , 2007, The Journal of experimental medicine.
[7] K. Jakobs,et al. Lysophospholipid receptors: signalling, pharmacology and regulation by lysophospholipid metabolism. , 2007, Biochimica et biophysica acta.
[8] G. Scott,et al. Lysophosphatidylcholine mediates melanocyte dendricity through PKCzeta activation. , 2007, The Journal of investigative dermatology.
[9] S. Akira,et al. TLR-Dependent Induction of IFN-β Mediates Host Defense against Trypanosoma cruzi1 , 2006, The Journal of Immunology.
[10] Y. Lee,et al. Characterization of Ca2+ influx induced by dimethylphytosphingosine and lysophosphatidylcholine in U937 monocytes. , 2006, Biochemical and biophysical research communications.
[11] A. Sher,et al. Cutting Edge: TLR9 and TLR2 Signaling Together Account for MyD88-Dependent Control of Parasitemia in Trypanosoma cruzi Infection1 , 2006, The Journal of Immunology.
[12] P. Cronet,et al. Secretory Phospholipase A2 Group V: Lesion Distribution, Activation by Arterial Proteoglycans, and Induction in Aorta by a Western Diet , 2006, Arteriosclerosis, thrombosis, and vascular biology.
[13] I. C. Almeida,et al. Platelet-activating factor-like activity isolated from Trypanosoma cruzi. , 2006, International journal for parasitology.
[14] S. Akira,et al. TLR-dependent induction of IFN-beta mediates host defense against Trypanosoma cruzi. , 2006, Journal of immunology.
[15] A. Sher,et al. TLR9 regulates Th1 responses and cooperates with TLR2 in mediating optimal resistance to Mycobacterium tuberculosis , 2005, The Journal of experimental medicine.
[16] G. Schiavo,et al. Equivalent Effects of Snake PLA2 Neurotoxins and Lysophospholipid-Fatty Acid Mixtures , 2005, Science.
[17] N. Andrews,et al. The Trypanosoma cruzi–host-cell interplay: location, invasion, retention , 2005, Nature Reviews Microbiology.
[18] M. Fantappié,et al. Nitrophorin synthesis is modulated by protein kinase CK2. , 2005, Biochemical and biophysical research communications.
[19] S. Higgs,et al. Aedes aegypti salivary gland extracts modulate anti-viral and TH1/TH2 cytokine responses to sindbis virus infection. , 2004, Viral immunology.
[20] S. Akira,et al. Expression of Functional TLR4 Confers Proinflammatory Responsiveness to Trypanosoma cruzi Glycoinositolphospholipids and Higher Resistance to Infection with T. cruzi1 , 2004, The Journal of Immunology.
[21] Ruth R. Montgomery,et al. Tick Saliva Reduces Adherence and Area of Human Neutrophils , 2004, Infection and Immunity.
[22] K. Walsh,et al. Impaired Clearance of Apoptotic Cells Promotes Synergy between Atherogenesis and Autoimmune Disease , 2004, The Journal of experimental medicine.
[23] G. Lanzaro,et al. Sand Fly Saliva Enhances Leishmania amazonensis Infection by Modulating Interleukin-10 Production , 2004, Infection and Immunity.
[24] S. Akira,et al. Impaired Production of Proinflammatory Cytokines and Host Resistance to Acute Infection with Trypanosoma cruzi in Mice Lacking Functional Myeloid Differentiation Factor 881 , 2004, The Journal of Immunology.
[25] H. Suh,et al. Therapeutic effects of lysophosphatidylcholine in experimental sepsis , 2004, Nature Medicine.
[26] D. Werling,et al. Differential production of cytokines, reactive oxygen and nitrogen by bovine macrophages and dendritic cells stimulated with Toll‐like receptor agonists , 2002, Immunology.
[27] J. Andersen,et al. Exploring the sialome of the blood-sucking bug Rhodnius prolixus. , 2004, Insect biochemistry and molecular biology.
[28] Li V. Yang,et al. T cell chemotaxis to lysophosphatidylcholine through the G2A receptor , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[29] J. Urbina,et al. Specific chemotherapy of Chagas disease: controversies and advances. , 2003, Trends in parasitology.
[30] T. Souto-Padrón,et al. Ecto-ATPase activity on the surface of Trypanosoma cruzi and its possible role in the parasite–host cell interaction , 2003, Parasitology Research.
[31] M. Silva-Neto,et al. Lysophosphatidylcholine Acts as an Anti-hemostatic Molecule in the Saliva of the Blood-sucking Bug Rhodnius prolixus* , 2003, Journal of Biological Chemistry.
[32] S. Baksh,et al. Apoptotic Cells Induce Migration of Phagocytes via Caspase-3-Mediated Release of a Lipid Attraction Signal , 2003, Cell.
[33] P. Elson,et al. Unfolding the pathophysiological role of bioactive lysophospholipids. , 2003, Current drug targets. Immune, endocrine and metabolic disorders.
[34] B. Burleigh,et al. Cell signalling and Trypanosoma cruzi invasion , 2002, Cellular microbiology.
[35] J. Dias,et al. The impact of Chagas disease control in Latin America: a review. , 2002, Memorias do Instituto Oswaldo Cruz.
[36] H. Arita,et al. Group X secretory phospholipase A(2) induces potent productions of various lipid mediators in mouse peritoneal macrophages. , 2001, Biochimica et biophysica acta.
[37] Lin Chen,et al. Neutrophil depletion exacerbates experimental Chagas' disease in BALB / c, but protects C57BL / 6 mice through modulating the Th1 / Th2 dichotomy in different directions , 2001, European journal of immunology.
[38] A. Lopes,et al. Platelet-Activating Factor (PAF) Modulates Peritoneal Mouse Macrophage Infection by Leishmania amazonensis , 2001, Current Microbiology.
[39] G. Schaub,et al. Trypanosoma cruzi: skin-penetration kinetics of vector-derived metacyclic trypomastigotes. , 2000, International journal for parasitology.
[40] S. Kamhawi. The biological and immunomodulatory properties of sand fly saliva and its role in the establishment of Leishmania infections. , 2000, Microbes and infection.
[41] G. Schaub,et al. The development of Trypanosoma cruzi in triatominae. , 2000, Parasitology today.
[42] K. Kragballe,et al. Intracutaneous injection of lysophosphatidylcholine induces skin inflammation and accumulation of leukocytes. , 2000, Acta dermato-venereologica.
[43] I. C. Almeida,et al. Highly purified glycosylphosphatidylinositols from Trypanosoma cruzi are potent proinflammatory agents , 2000, The EMBO journal.
[44] G. Atella,et al. Fatty acid incorporation by Rhodnius prolixus midgut. , 2000, Archives of insect biochemistry and physiology.
[45] H. Castro-Faria-Neto,et al. Uptake of apoptotic cells drives the growth of a pathogenic trypanosome in macrophages , 2000, Nature.
[46] W. Colli,et al. Lipids shed into the culture medium by trypomastigotes of Trypanosoma cruzi. , 2000, Memorias do Instituto Oswaldo Cruz.
[47] G. Zimmerman,et al. Biologically Active Oxidized Phospholipids* , 1999, The Journal of Biological Chemistry.
[48] P. Volf,et al. Modulation of murine lymphocyte responsiveness by the saliva of Rhodnius prolixus (Hemiptera: Reduviidae). , 1999, Journal of medical entomology.
[49] R. Kao,et al. Lipid hydroperoxides inhibit nitric oxide production in RAW264.7 macrophages. , 1999, Free radical biology & medicine.
[50] G. Schuler,et al. An advanced culture method for generating large quantities of highly pure dendritic cells from mouse bone marrow. , 1999, Journal of immunological methods.
[51] M. Mbow,et al. Phlebotomus papatasi sand fly salivary gland lysate down-regulates a Th1, but up-regulates a Th2, response in mice infected with Leishmania major. , 1998, Journal of immunology.
[52] C. Amura,et al. Differential regulation of lipopolysaccharide (LPS) activation pathways in mouse macrophages by LPS-binding proteins. , 1998, Journal of immunology.
[53] H. Itabe. Oxidized phospholipids as a new landmark in atherosclerosis. , 1998, Progress in lipid research.
[54] T. Shimizu,et al. Lysophosphatidylcholine transduces Ca2+ signaling via the platelet-activating factor receptor in macrophages. , 1997, The American journal of physiology.
[55] R. Granstein,et al. Immunomodulatory properties of maxadilan, the vasodilator peptide from sand fly salivary gland extracts. , 1996, The American journal of tropical medicine and hygiene.
[56] R. Gazzinelli,et al. Interleukin-12 mediates resistance to Trypanosoma cruzi in mice and is produced by murine macrophages in response to live trypomastigotes , 1996, Infection and immunity.
[57] H. Maegawa,et al. Lysophosphatidylcholine stimulates the expression and production of MCP-1 by human vascular endothelial cells. , 1996, Metabolism: clinical and experimental.
[58] R. Titus,et al. Sand fly vector saliva selectively modulates macrophage functions that inhibit killing of Leishmania major and nitric oxide production. , 1995, Journal of immunology.
[59] F. Cunha,et al. Nitric oxide is involved in control of Trypanosoma cruzi-induced parasitemia and directly kills the parasite in vitro , 1994, Infection and immunity.
[60] D. Steinberg,et al. Oxidatively modified low density lipoprotein is a chemoattractant for human T lymphocytes. , 1993, The Journal of clinical investigation.
[61] K. Kugiyama,et al. Impairment of endothelium-dependent arterial relaxation by lysolecithin in modified low-density lipoproteins , 1990, Nature.
[62] D. Steinberg,et al. Lysophosphatidylcholine: a chemotactic factor for human monocytes and its potential role in atherogenesis. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[63] R. Titus,et al. Salivary gland lysates from the sand fly Lutzomyia longipalpis enhance Leishmania infectivity. , 1988, Science.
[64] S. Goldenberg,et al. In vitro differentiation of Trypanosoma cruzi under chemically defined conditions. , 1985, Molecular and biochemical parasitology.
[65] E. Camargo. GROWTH AND DIFFERENTIATION IN TRYPANOSOMA CRUZI. I. ORIGIN OF METACYCLIC TRYPANOSOMES IN LIQUID MEDIA. , 1964, Revista do Instituto de Medicina Tropical de Sao Paulo.
[66] O. H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.