Concomitant Benznidazole and Suramin Chemotherapy in Mice Infected with a Virulent Strain of Trypanosoma cruzi
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J. Fietto | A. Talvani | M. T. Bahia | R. Novaes | M. C. Cupertino | Eliziária C Santos | D. S. S. Bastos | L. L. Oliveira | R. C. Klein | E. A. M. Silva
[1] M. Shikanai-Yasuda,et al. Chagas Disease , 2021, Neglected Tropical Diseases.
[2] E. Bocchi,et al. Myocardial Gene Expression of T-bet, GATA-3, Ror-γt, FoxP3, and Hallmark Cytokines in Chronic Chagas Disease Cardiomyopathy: An Essentially Unopposed TH1-Type Response , 2014, Mediators of inflammation.
[3] David M. Shackleford,et al. Antitrypanosomal Activity of Fexinidazole Metabolites, Potential New Drug Candidates for Chagas Disease , 2014, Antimicrobial Agents and Chemotherapy.
[4] A. Natali,et al. Trypanosoma cruzi infection induces morphological reorganization of the myocardium parenchyma and stroma, and modifies the mechanical properties of atrial and ventricular cardiomyocytes in rats. , 2013, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[5] A. Talvani,et al. Fexinidazole: A Potential New Drug Candidate for Chagas Disease , 2012, PLoS neglected tropical diseases.
[6] A. Talvani,et al. Real-time PCR strategy for parasite quantification in blood and tissue samples of experimental Trypanosoma cruzi infection. , 2012, Acta tropica.
[7] Camden J. Hallmark,et al. Chagas Disease: “The New HIV/AIDS of the Americas” , 2012, PLoS neglected tropical diseases.
[8] B. Hall,et al. Activation of Benznidazole by Trypanosomal Type I Nitroreductases Results in Glyoxal Formation , 2011, Antimicrobial Agents and Chemotherapy.
[9] J. Silva,et al. Current status of Chagas disease chemotherapy , 2011, Expert review of anti-infective therapy.
[10] L. Boscá,et al. Benznidazole blocks NF-kappaB activation but not AP-1 through inhibition of IKK. , 2010, Molecular immunology.
[11] J. Urbina. Specific chemotherapy of Chagas disease: relevance, current limitations and new approaches. , 2010, Acta tropica.
[12] N. Garg,et al. Trypanosoma cruzi infection disturbs mitochondrial membrane potential and ROS production rate in cardiomyocytes. , 2009, Free radical biology & medicine.
[13] R. Tarleton,et al. Insufficient TLR Activation Contributes to the Slow Development of CD8+ T Cell Responses in Trypanosoma cruzi Infection1 , 2009, The Journal of Immunology.
[14] N. Garg,et al. Oxidative Stress in Chagas Disease , 2009, Interdisciplinary Perspectives on Infectious Diseases.
[15] O. Bottasso,et al. Novel cytostatic activity of the trypanocidal drug Benznidazole. , 2009, International immunopharmacology.
[16] S. Verjovski-Almeida,et al. Influence of Ecto-Nucleoside Triphosphate Diphosphohydrolase Activity on Trypanosoma cruzi Infectivity and Virulence , 2009, PLoS neglected tropical diseases.
[17] L. Flohé,et al. Insights into the redox biology of Trypanosoma cruzi: Trypanothione metabolism and oxidant detoxification. , 2008, Free radical biology & medicine.
[18] J. Kalil,et al. Distinct outcomes of Trypanosoma cruzi infection in hamsters are related to myocardial parasitism, cytokine/chemokine gene expression, and protein expression profile. , 2008, The Journal of infectious diseases.
[19] K. Kristensson,et al. Suramin and minocycline treatment of experimental African trypanososmiasis at an early stage of parasite brain invasion. , 2008, Acta tropica.
[20] T. Souto-Padrón,et al. In vitro effects of suramin on Trypanosoma cruzi. , 2008, International journal of antimicrobial agents.
[21] N. Cianciotto,et al. A bacterial ecto‐triphosphate diphosphohydrolase similar to human CD39 is essential for intracellular multiplication of Legionella pneumophila , 2007, Cellular microbiology.
[22] N. Galanti,et al. Mode of action of natural and synthetic drugs against Trypanosoma cruzi and their interaction with the mammalian host. , 2007, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[23] J. Jannin,et al. The future of Chagas disease control. , 2006, Trends in parasitology.
[24] J. Castro,et al. Toxic Side Effects of Drugs Used to Treat Chagas’ Disease (American Trypanosomiasis) , 2006, Human & experimental toxicology.
[25] N. Garg,et al. Increased oxidative stress is correlated with mitochondrial dysfunction in chagasic patients. , 2006, Free radical biology & medicine.
[26] O. Bottasso,et al. Benznidazole, a drug used in Chagas' disease, ameliorates LPS-induced inflammatory response in mice. , 2004, Life sciences.
[27] N. Garg,et al. Oxidative damage during chagasic cardiomyopathy development: role of mitochondrial oxidant release and inefficient antioxidant defense. , 2004, Free radical biology & medicine.
[28] 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.
[29] R. Tarleton,et al. Rapid quantitation of Trypanosoma cruzi in host tissue by real-time PCR. , 2003, Molecular and biochemical parasitology.
[30] C. Carneiro,et al. Chemotherapy with Benznidazole and Itraconazole for Mice Infected with Different Trypanosoma cruzi Clonal Genotypes , 2003, Antimicrobial Agents and Chemotherapy.
[31] Z. Andrade,et al. Pathology of intracardiac nerves in experimental Chagas disease. , 2002, Memorias do Instituto Oswaldo Cruz.
[32] Wenda Gao,et al. Interleukin-6 is required for parasite specific response and host resistance to Trypanosoma cruzi. , 2002, International journal for parasitology.
[33] S. Endres,et al. Extracellular ATP and TNF-α Synergize in the Activation and Maturation of Human Dendritic Cells1 , 2000, The Journal of Immunology.
[34] H. Zimmermann. Extracellular metabolism of ATP and other nucleotides , 2000, Naunyn-Schmiedeberg's Archives of Pharmacology.
[35] K. Joiner,et al. Induced Activation of the Toxoplasma gondiiNucleoside Triphosphate Hydrolase Leads to Depletion of Host Cell ATP Levels and Rapid Exit of Intracellular Parasites from Infected Cells* , 1998, The Journal of Biological Chemistry.
[36] R. Gazzinelli,et al. Immunological control of Trypanosoma cruzi infection and pathogenesis of Chagas' disease. , 1997, International archives of allergy and immunology.
[37] J. Wilting,et al. Recent research on the biological activity of suramin. , 1993, Pharmacological reviews.
[38] R. Mason,et al. Different behaviors of benznidazole as free radical generator with mammalian and Trypanosoma cruzi microsomal preparations. , 1982, Archives of biochemistry and biophysics.
[39] W. Gutteridge,et al. Presence and properties of thymidylate synthase in trypanosomatids. , 1977, Biochimica et biophysica acta.
[40] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[41] Z. Brener. Therapeutic activity and criterion of cure on mice experimentally infected with Trypanosoma cruzi. , 1962, Revista do Instituto de Medicina Tropical de Sao Paulo.
[42] U. Kemmerling,et al. Chagas disease: Present status of pathogenic mechanisms and chemotherapy. , 2010, Biological research.
[43] Margaret Chan,et al. Working to overcome the global impact of neglected tropical diseases : first WHO report on neglected tropical diseases , 2010 .
[44] R. Bonfante-Cabarcas,et al. [C-reactive protein and interleukin-6 serum levels increase as Chagas disease progresses towards cardiac failure]. , 2006, Revista espanola de cardiologia.
[45] L. López,et al. Las concentraciones séricas de interleucina-6 y proteína C reactiva se incrementan a medida que la enfermedad de Chagas evoluciona hacia el deterioro de la función cardíaca , 2006 .
[46] M. Goldman,et al. Cytokine mRNA quantification by real-time PCR. , 2002, Journal of immunological methods.
[47] S. Endres,et al. Extracellular ATP and TNF-alpha synergize in the activation and maturation of human dendritic cells. , 2000, Journal of immunology.
[48] E. Stadtman,et al. Determination of carbonyl content in oxidatively modified proteins. , 1990, Methods in enzymology.
[49] A Voller,et al. Enzyme immunoassays in diagnostic medicine. Theory and practice. , 1976, Bulletin of the World Health Organization.