La transfección del gen de ATPasa (tipo vacuolar) de Leishmania mexicana incrementa la virulencia en aislado no virulento de Leishmania enriettii
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Bankowski Z. & Howard-Jones N. (1986). International guiding principles for biomedical research involving animals. CIOMS/WHO. Geneva, Switzerland.
Ben Achour Y., Chenik M., Louzir H., & Dellagi K. (2002). Identification of a disulfide isomerase protein of Leishmania major as a putative virulence factor. Infect. Immun. 70: 3576-3585.
Benaim G. (2004). La Ca2+ATPasa de la membrana plasmática como enzima clave en la homeostasis
intracelular del calcio. Estimulación por etanol y otros efectores. Acta Científ. Venezol. 55: 304-314.
Beverly S. (2002). Genetic and genomic approaches to the analysis of Leishmania virulence. En:
Molecular Medical Parasitology. Marr, J., Nilsen, T. & Komuniecki, R. Eds. San Diego, California, USA.
Blackwell J. M. (1996). Genetic susceptibility to leishmanial infections: studies in mice and man. Parasitol. 112: S67-S74.
Breton M., Tremblay M. J., Ouellette M & Papadopoulou B. (2005). Live nonpathogenic parasitic vector as a candidate vaccine against visceral leishmaniasis. Infect. Immun. 73: 6372-6382.
Carafoli E & Brini M. (2000). Calcium pumps: Structural basis for and mechanism of calcium transmembrane transport. Curr. Opinion Chem. Biol. 4: 152-161.
Chang K. P., Akman L. & Nilsen J. S. (1999). Leishmania virulence y genetic heterogeneity. Clin. Dermatol. 17: 269-273.
Chang K. P., Chaudhuri G & Fong D. (1990). Molecular determinants of Leishmania virulence. Annu. Rev. Microbiol. 44: 499-529.
Chang K. P. & Dwyer D. M. (1976). Multiplication of a human parasite (Leishmania donovani) in phagolysosomes of hamsters macrophages in vitro. Science. 193: 678-680.
Chang K. P. & Mc Gwire B. S. (2002). Molecular determinants and regulation of Leishmania virulence. Kinetoplastid Biol. Dis. 1: 1-7.
Chang K. P., Reed S. G., Mc Gwire B. S. & Soong L. (2003). Leishmania model for microbial virulence: the relevance of parasite multiplication and pathoantigenicity. Acta Tropica. 85: 375-380.
Convit J. & Pinardi M. E. (1972). Diffuse cutaneous leishmaniasis: a disease due to an immunological
defect to the host. Trans. Roy. Soc. Trop. Med. Hyg. 66: 603-610.
Convit J. & Pinardi M. E. (1974). Cutaneous leishmaniasis: The clinical and immunological spectrum in South America. In: Trypanosomiasis and Leishmaniasis with Special Reference to Chaga's Disease. Ciba Foundation Symposium Nº 20 (new series). Amsterdam, Elsevier/Excerpta Medica/North-Holland. pp. 159-169.
Cortazar T. M. & Walker J. (2004). Manipulación genética y el estudio del parásito protozoario Leishmania. Biomédica. 24: 438-455.
Fernández A. & Rodríguez N. (2005). Molecular cloning and expression of a CaATPase (vacuolar type) from Leishmania mexicana. Proceedings of the XI European Multicoloquium of Parasitology. Monduzzi Editore. Italy. 98-102.
Fernández A. & Rodríguez N. (2011). El gen de la ATPasa Vacuolar de Leishmania amazonensis induce cambios en la virulencia de Leishmania enriettii. XX Congreso Latinoamericano de Parasitología y XV Congreso Colombiano de Parasitología y Medicina Tropical. Colombia.
Fernández A. & Rodríguez N. (2012). Expresión de la proteína codificada por el gen Ca+2ATPasa (Tipo Vacuolar) de L. mexicana. I Congreso Venezolano de Ciencia Tecnología e Innovación. Caracas,
Venezuela.
Garami A. & Ilg T. (2001). The role of phosphomannose isomerase in Leishmania mexicana glycoconjugate synthesis and virulence, J. Biol. Chem. 276: 6566-6575.
Guy R. A & Belosevic, M. (1993). Comparison of receptors required for entry of Leishmania major
amastigotes into macrophages. Infect. Immun. 61: 1553-1558.
Hayek S., Lee S. & Parra K. (2014). Advances in targeting the vacuolar proton-translocating ATPase (V-ATPase) for anti-fungal therapy. Front. Pharma. 5: 1-8.
Laiso R. (1997). On Leishmania enriettii and other enigmatic Leishmania species of the neoptropics.
Mem. Inst. Oswaldo Cruz. 92: 377-387.
Lu H. G., Zhong L., Chang K. P. & Docampo R. (1997). Intracellular Ca2+ pool content and
signaling and expression of a calcium pump are linked to virulence in Leishmania mexicana amazonensis amastigotes. J. Biol. Chem. 272: 9464-9473.
Machado M. I., Milder R. V., Pacheco R. S., Silva M. & Braga R. (1994). Naturally acquired infections
with Leishmania enriettii Muniz and Medina 1948 in guinea-pigs from Sao Paulo. Parasitol. 109: 135-138.
Marchesini N. & Docampo R. A. (2002). Plasma membrane P-type H+-ATPase regulates intracellular pH in Leishmania mexicana mazonensis. Mol. Biochem. Parasitol. 119: 225-236.
Matlashewski G. (2001). Leishmania infection and virulence. Med Microbiol Inmunol. 190: 37- 42.
McCall L. & Matlashewski G. (2010). Localization and induction of A2 virulence factor in Leishmania: evidence that A2 is a stress response protein. Mol. Microbiol. 77: 518-530.
Mizbani A., Taslimi Y., Zahedifard F., Tahewri T. & Rafati S. (2011). Effect of A2 gene on infectivity of
the nonpathogenic parasite Leishmania tarentolae. Parasitol. Res. 109: 793-799.
Moreno S. N. & Docampo R. (2003). Calcium regulation in protozoan parasites. Curr. Opinion Microbiol. 6: 359-364.
Mottram J., Coombs G. & Alexander J. (2004). Cysteine peptidases as virulence factors of Leishmania. Curr. Opinion Microbiol. 7: 375-381.
Probst P., Stromberg E., Ghalib H. W., Mozel M., Badaro R., Reed S. G. & Webb J. R. (2001).
Identification and characterization of T cellstimulating antigens from Leishmania by CD4 T cell expression cloning. J. Immunol. 166: 498-505.
Rodgers M. R., Popper S. J. & Wirth D. F. (1990). Amplification of kinetoplast DNA as a tool in
the detection and diagnosis of Leishmania. Exp. Parasitol. 71: 267-275.
Rondón A. J. (1993). Leishmaniasis Tegumentaria Americana. Clín. Dermatol. Venez. 31: 12-17.
Rodríguez N. (2003). Factores de virulencia en Leishmania y su relación con el desarrollo de la leishmaniasis. Dermatol. Venezol. 41: 3-9.
Rodríguez N., Cardona M., Zerpa O., Barrios M., Sosa A. & Fernández A. (2001). Aplicación de herramientas moleculares en el diagnóstico y caracterización de Leishmania spp en áreas endémicas de Venezuela. Bol. Mal. San. Amb. 41: 21-26.
Rodríguez N. M., Docampo R., Lu H. G. & Scott D. (2002). Overexpression of the Leishmania amazonensis Ca2+ATPase gene Lmma1 enhances virulence. Cell. Microbiol. 4: 117-126.
Spath F., Epstein L., Leader B., Singer S., Avila G., Turco S. & Beverly S. (2000). Lipophosphoglycan is a virulence factor distinct from related glycoconjugates in the protozoan parasite Leishmania major. Proc. Natl. Acad. Sci. 97: 9258-9263.
Spath F., Garraway L., Turco S. & Beverly S. (2003).The role of lipophosphoglycan (LPG) in the stablishment of Leishmania major infections in mammalian hosts. Proc. Natl. Acad. Sci. 100: 9536-9541.
Titus R. G. & Ribeiro J. M. (1988). Salivary gland lysates from the sand fly Lutzomyia longipalpis
enhance Leishmania infectivity. Science. 239: 1306-1308.
WHO (2014). http://www.who.int/mediacentre/factsheets/fs375/en/. Consultado en fecha 16-07 2014
Zerpa O., Ulrich M., Benitez M., Ávila C., Rodríguez V., Centeno M., et al. (2002). Epidemiological and immunological aspect of human visceral leishmaniasis on Margarita Island, Venezuela. Mem. Inst. Oswaldo Cruz. 97: 1079- 1083.
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