Inducible nitric oxide synthase and arginase expression in heart tissue during acute Trypanosoma cruzi infection in mice: arginase I is expressed in infiltrating CD68+ macrophages.
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M. Fresno | M. Pineda | H. Cuervo | N. Gironès | M. Aoki | S. Gea | Henar Cuervo
[1] S. Sauleda,et al. Development of a real-time PCR assay for Trypanosoma cruzi detection in blood samples. , 2007, Acta tropica.
[2] C. Macleod,et al. l-Arginine and Cationic Amino Acid Transporter 2B Regulate Growth and Survival of Leishmania amazonensis Amastigotes in Macrophages , 2007, Infection and Immunity.
[3] M. Olivier,et al. Trypanosoma cruzi-Mediated IFN-γ-Inducible Nitric Oxide Output in Macrophages Is Regulated by iNOS mRNA Stability1 , 2006, The Journal of Immunology.
[4] A. Pegg. Regulation of Ornithine Decarboxylase* , 2006, Journal of Biological Chemistry.
[5] M. Palacín,et al. Arginine Transport via Cationic Amino Acid Transporter 2 Plays a Critical Regulatory Role in Classical or Alternative Activation of Macrophages1 , 2006, The Journal of Immunology.
[6] A. Shoukas,et al. Arginase modulates myocardial contractility by a nitric oxide synthase 1-dependent mechanism. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[7] P. Peixoto,et al. Arginase I Induction during Leishmania major Infection Mediates the Development of Disease , 2005, Infection and Immunity.
[8] A. Celada,et al. Arginase and polyamine synthesis are key factors in the regulation of experimental leishmaniasis in vivo , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[9] R. Melo,et al. Peripheral blood monocytes show morphological pattern of activation and decreased nitric oxide production during acute Chagas' disease in rats. , 2004, Nitric oxide : biology and chemistry.
[10] R. Tarleton,et al. Inducible Nitric Oxide Synthase Is Not Essential for Control of Trypanosoma cruzi Infection in Mice , 2004, Infection and Immunity.
[11] P. De Baetselier,et al. Alternatively activated macrophages during parasite infections. , 2004, Trends in parasitology.
[12] T. Gotoh,et al. Cruzipain, a major Trypanosoma cruzi antigen, promotes arginase-2 expression and survival of neonatal mouse cardiomyocytes. , 2004, American journal of physiology. Cell physiology.
[13] O. Coso,et al. Arginase induction promotes Trypanosoma cruzi intracellular replication in Cruzipain‐treated J774 cells through the activation of multiple signaling pathways , 2004, European journal of immunology.
[14] J. Pfeilschifter,et al. Translational Control of Inducible Nitric Oxide Synthase by IL-13 and Arginine Availability in Inflammatory Macrophages 1 , 2003, The Journal of Immunology.
[15] J. Ochoa,et al. l-Arginine Consumption by Macrophages Modulates the Expression of CD3ζ Chain in T Lymphocytes1 , 2003, The Journal of Immunology.
[16] R. Ferrante,et al. Translational control of inducible nitric oxide synthase expression by arginine can explain the arginine paradox , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[17] F. Brombacher,et al. Infection Stage-Dependent Modulation of Macrophage Activation in Trypanosoma congolense-Resistant and -Susceptible Mice , 2002, Infection and Immunity.
[18] M. Fresno,et al. Immunosuppression during acute Trypanosoma cruzi infection: involvement of Ly6G (Gr1(+))CD11b(+ )immature myeloid suppressor cells. , 2002, International immunology.
[19] S. Gea,et al. Alternative activation and increase of Trypanosoma cruzi survival in murine macrophages stimulated by cruzipain, a parasite antigen , 2002, Journal of leukocyte biology.
[20] L. Weiss,et al. Significance of inducible nitric oxide synthase in acute myocarditis caused by Trypanosoma cruzi (Tulahuen strain). , 2002, International journal for parasitology.
[21] A. Gobert,et al. Helicobacter pylori Induces Macrophage Apoptosis by Activation of Arginase II1 , 2002, The Journal of Immunology.
[22] S. Gea,et al. Cruzipain, a major Trypanosoma cruzi antigen, conditions the host immune response in favor of parasite , 2002, European journal of immunology.
[23] D. Gao,et al. The quantity of nitric oxide released by macrophages regulates Chlamydia-induced disease , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[24] C. Alonso,et al. Arginase I induction in macrophages, triggered by Th2‐type cytokines, supports the growth of intracellular Leishmania parasites , 2002, Parasite immunology.
[25] A. Gobert,et al. Helicobacter pylori arginase inhibits nitric oxide production by eukaryotic cells: A strategy for bacterial survival , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[26] V. Bronte,et al. Tumor-induced immune dysfunctions caused by myeloid suppressor cells. , 2001, Journal of immunotherapy.
[27] K. Racké,et al. Concomitant down-regulation of L-arginine transport and nitric oxide (NO) synthesis in rat alveolar macrophages by the polyamine spermine. , 2001, Pulmonary pharmacology & therapeutics.
[28] V. Iniesta,et al. The Inhibition of Arginase by N ω-Hydroxy-l-Arginine Controls the Growth of Leishmania Inside Macrophages , 2001, The Journal of experimental medicine.
[29] J. Aliberti,et al. Trypanosoma cruzi–Infected Cardiomyocytes Produce Chemokines and Cytokines That Trigger Potent Nitric Oxide–Dependent Trypanocidal Activity , 2000, Circulation.
[30] B. Veyret,et al. l-Arginine Availability Modulates Local Nitric Oxide Production and Parasite Killing in Experimental Trypanosomiasis , 2000, Infection and Immunity.
[31] H. Castro-Faria-Neto,et al. Uptake of apoptotic cells drives the growth of a pathogenic trypanosome in macrophages , 2000, Nature.
[32] R. Gazzinelli,et al. β-Chemokines Enhance Parasite Uptake and Promote Nitric Oxide-Dependent Microbiostatic Activity in Murine Inflammatory Macrophages Infected with Trypanosoma cruzi , 1999, Infection and Immunity.
[33] S. Morris,et al. Differential regulation of arginases and inducible nitric oxide synthase in murine macrophage cells. , 1998, American journal of physiology. Endocrinology and metabolism.
[34] F. B. Davis,et al. Induction of Mn SOD in human monocytes without inflammatory cytokine production by a mutant endotoxin. , 1998, American journal of physiology. Cell physiology.
[35] M. Munder,et al. Alternative metabolic states in murine macrophages reflected by the nitric oxide synthase/arginase balance: competitive regulation by CD4+ T cells correlates with Th1/Th2 phenotype. , 1998, Journal of immunology.
[36] M. Takiguchi,et al. Coinduction of Nitric-oxide Synthase and Arginase I in Cultured Rat Peritoneal Macrophages and Rat Tissues in Vivo by Lipopolysaccharide* , 1997, The Journal of Biological Chemistry.
[37] M. Fresno,et al. Cytokines and infectious diseases. , 1997, Immunology today.
[38] J. Moulinoux,et al. Transforming growth factor-beta stimulates arginase activity in macrophages. Implications for the regulation of macrophage cytotoxicity. , 1995, Journal of immunology.
[39] M. Modolell,et al. Arginase induction by suppressors of nitric oxide synthesis (IL-4, IL-10 and PGE2) in murine bone-marrow-derived macrophages. , 1995, Biochemical and biophysical research communications.
[40] M. Modolell,et al. Determination of arginase activity in macrophages: a micromethod. , 1994, Journal of immunological methods.
[41] J. Fukuto,et al. Inhibition of rat liver arginase by an intermediate in NO biosynthesis, NG-hydroxy-L-arginine: implications for the regulation of nitric oxide biosynthesis by arginase. , 1994, Biochemical and biophysical research communications.
[42] D. Pakianathan,et al. Trypanosoma cruzi affects nitric oxide production by murine peritoneal macrophages. , 1994, The Journal of parasitology.
[43] B. Vray,et al. Trypanosoma cruzi upregulates nitric oxide release by IFN‐γ‐preactivated macrophages, limiting cell infection independently of the respiratory burst , 1993, Parasite immunology.
[44] A. Sher,et al. The microbicidal activity of interferon‐γ‐treated macrophages against Trypanosoma cruzi involves an L‐arginine‐dependent, nitrogen oxide‐mediated mechanism inhibitable by interleukin‐10 and transforming growth factor‐β , 1992, European journal of immunology.
[45] M. Fresno,et al. Activation of human macrophages for the killing of intracellular Trypanosoma cruzi by TNF-α and IFN-γ through a nitric oxide-dependent mechanism , 1992 .
[46] A. Gobert,et al. Arginases in parasitic diseases. , 2003, Trends in parasitology.
[47] Joao A. C. Lima,et al. Nitric oxide regulates the heart by spatial confinement of nitric oxide synthase isoforms , 2002, Nature.
[48] G. Wang,et al. Metallothionein-overexpressing neonatal mouse cardiomyocytes are resistant to H2O2toxicity. , 1999, American journal of physiology. Heart and circulatory physiology.
[49] G. Wang,et al. Metallothionein-overexpressing neonatal mouse cardiomyocytes are resistant to H 2 O 2 toxicity , 1998 .