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Research Article

Interactions between TLR2, TLR4, and mannose receptors with gp43 from Paracoccidioides brasiliensis induce cytokine production by human monocytes

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Pages 694-703 | Received 24 Sep 2010, Accepted 20 Feb 2011, Published online: 18 Mar 2011

References

  • Wanke B, Londero AT. Epidemiology of paracoccidioidomycosis infection. Franco M, Lacaz CS, Restrepo-Moreno A, Del Negro G. Paracoccidioidomycosis. Boca Raton FL: CRC Press, 1994. 109–120.
  • Restrepo A, Tobón AM. Paracoccidioides brasiliensis. Mandell GE, Bennett JE, Dollin R. Principles and Practice of Infectious Diseases. 6th. Philadelphia PA: Elsevier, 2005. 3062–3068.
  • Franco M, Mendes RP, Moscardi-Bacchi M, Rezkallah-Iwasso MT, Montenegro MR. Paracoccidioidomycosis. Bailliere's Clin Trop Med Commun Dis 1989; 4: 185–220.
  • Romani L. Immunity to fungal infections. Nat Rev Immunol 2004; 4: 1–23.
  • Calich VL, Da Costa TA, Felonato M, . Innate immunity to Paracoccidioides brasiliensis infection. Mycopathologia 2008; 165: 223–236.
  • Janeway CA Jr, Medzhitov R. Innate immune recognition. Annu Rev Immunol 2002; 20: 197–216.
  • Levitz SM. Interactions of Toll-like receptors with fungi. Microbes Infect 2004; 6: 1351–1355.
  • Medzhitov R. Recognition of microorganisms and activation of the immune response. Nature 2007; 449: 819–826.
  • Stahl PD, Ezekowitz RA. The mannose receptor is a pattern recognition receptor involved in host defense. Curr Opin Immunol 1998; 10: 50–55.
  • Willment JA, Brown GD. C-type lectin receptors in antifungal immunity. Trends Microbiol 2008; 16: 27–32.
  • Braedel S, Radsak M, Einsele H, . Aspergillus fumigatus antigens activate innate immune cells via toll-like receptors 2 and 4. Br J Haematol 2004; 125: 392–399.
  • Nakamura K, Miyagi K, Koguchi Y, . Limited contribution of Toll-like receptor 2 and 4 to the host response to a fungal infectious pathogen Cryptococcus neoformans. FEMS Immunol Med Microbiol 2006; 47:148–154.
  • Bonfim CV, Mamoni RL, Blotta MH. TLR-2, TLR-4 and dectin-1 expression in human monocytes and neutrophils stimulated by Paracoccidioides brasiliensis. Med Mycol 2009; 47: 722–733.
  • Netea MG, Brown GD, Kullberg BJ, Gow NA. An integrated model of the recognition of Candida albicans by the innate immune system. Nat Rev Microbiol 2008; 6: 67–78.
  • Stahl P, Gordon S. Expression of a mannosyl-fucosyl receptor for endocytosis on cultured primary macrophages and their hybrids. J Cell Biol 1982; 93: 49–56.
  • Yamamoto Y, Klein TW, Friedman H. Involvement of mannose receptor in cytokine interleukin-1beta (IL-1beta), IL-6, and granulocyte-macrophage colony-stimulating factor responses, but not in chemokine macrophage inflammatory protein 1beta (MIP-1beta), MIP-2, and KC responses, caused by attachment of Candida albicans to macrophages. Infect Immun 1997; 65: 1077–1082.
  • Srinoulprasert Y, Pongtanalert P, Chawengkirttikul R, Chaiyaroj SC. Engagement of Penicillium marneffei conidia with multiple pattern recognition receptors on human monocytes. Microbiol Immunol 2009; 53: 162–172.
  • Gazi U, Martinez-Pomares L. Influence of the mannose receptor in host immune responses. Immunobiology 2009; 214: 554–561.
  • Mambula SS, Sau K, Henneke P, Golenbock DT, Levitz SM. Toll-like receptor (TLR) signaling in response to Aspergillus fumigatus. J Biol Chem 2002; 277: 39320–39326.
  • Puccia R, Schenkman S, Gorin PA, Travassos LR. Exocellular components of Paracoccidioides brasiliensis: identification of a specific antigen. Infect Immun 1986; 53: 199–206.
  • Camargo ZP, Taborda CP, Rodrigues EG, Travassos LR. The use of cell-free antigens of Paracoccidioides brasiliensis in serological tests. J Med Vet Mycol 1991; 29: 31–38.
  • Marques da Silva SH, Queiroz-Telles F, Colombo AL, . Monitoring gp43 antigenemia in paracoccidioidomycosis patients during therapy. J Clin Microbiol 2004; 42: 2419–2424.
  • Almeida IC, Neville DC, Mehlert A, . Structure of the N-linked oligosaccharide of the main diagnostic antigen of the pathogenic fungus Paracoccidioides brasiliensis. Glycobiology 1996; 6: 507–515.
  • Vicentini AP, Gesztesi JL, Franco MF, . Binding of Paracoccidioides brasiliensis to laminin through surface glycoprotein gp43 leads to enhancement of fungal pathogenesis. Infect Immun 1994; 62: 1465–1469.
  • Gesztesi JL, Puccia R, Travassos LR, . Monoclonal antibodies against the 43,000 Da glycoprotein from Paracoccidioides brasiliensis modulate laminin-mediated fungal adhesion to epithelial cells and pathogenesis. Hybridoma 1996; 15: 415–422.
  • Almeida SR, Unterkircher CS, Camargo ZP. Involvement of the major glycoprotein (gp43) of Paracoccidioides brasiliensis in attachment to macrophages. Med Mycol 1998; 36: 405–411.
  • Popi AF, Lopes JD, Mariano M. gp43 from Paracoccidioides brasiliensis inhibits macrophage functions. An evasion mechanism of the fungus. Cell Immunol 2002; 218: 87–94.
  • Konno AY, Maricato JT, Konno FT, Mariano M, Lopes JD. Peptides from Paracoccidioides brasiliensis gp43 inhibit macrophage functions and inflammatory response. Microbes Infect 2009; 11: 92–99.
  • Taborda CP, Juliano MA, Puccia R, . Mapping of the T-cell epitope in the major 43-kilodalton glycoprotein of Paracoccidioides brasiliensis which induces a Th-1 response protective against fungal infection in BALB/c mice. Infect Immun 1998; 66: 786–793.
  • Li CY, Lam KW, Yam LT. Esterases in human leukocytes. J Histochem Cytochem 1973; 21: 1–12.
  • Godfrey K. Statistics in practice. Comparing the means of several groups. N Engl J Med 1985; 313: 1450–1456.
  • Brummer E, Hanson LH, Restrepo A, Stevens DA. Intracellular multiplication of Paracoccidioides brasiliensis in macrophages: killing and restriction of multiplication by activated macrophages. Infect Immun 1989; 57: 2289–2294.
  • Kurokawa CS, Araujo JP Jr, Soares AM, Sugizaki MF, Peraçoli MT. Pro- and anti-inflammatory cytokines produced by human monocytes challenged in vitro with Paracoccidioides brasiliensis. Microbiol Immunol 2007; 51: 421–428.
  • East L, Isacke CM. The mannose receptor family. Biochim Biophys Acta 2002; 1572: 364–386.
  • Ferreira KS, Lopes JD, Almeida SR. Down-regulation of dendritic cell activation induced by Paracoccidioides brasiliensis. Immunol Lett 2004; 94: 107–114.
  • Jiménez M del P, Restrepo A, Radzioch D, Cano LE, García LF. Importance of complement 3 and mannose receptors in phagocytosis of Paracoccidioides brasiliensis conidia by Nramp1 congenic macrophages lines. FEMS Immunol Med Microbiol 2006; 47: 56–66.
  • Jouault T, Ibata-Ombetta S, Takeuchi O, . Candida albicans phospholipomannan is sensed through toll-like receptors. J Infect Dis 2003; 188: 165–172.
  • Monari C, Bistoni F, Casadevall A, . Glucuronoxylomannan, a microbial compound, regulates expression of costimulatory molecules and production of cytokines in macrophages. J Infect Dis 2005; 191: 127–137.
  • Mansour MK, Schlesinger LS, Levitz SM. Optimal T cell responses to Cryptococcus neoformans mannoprotein is dependent on recognition of conjugated carbohydrates by mannose receptors. J Immunol 2002; 168: 2872–2879.
  • Bellocchio S, Montagnoli C, Bozza S, . The contribution of the Toll-like/IL-1 receptor superfamily to innate and adaptive immunity to fungal pathogens in vivo. J Immunol 2004; 172: 3059–3069.
  • Van der Graaf CA, Netea MG, Verschueren I, van der Meer JW, Kullberg BJ. Differential cytokine production and Toll-like receptor signaling pathways by Candida albicans blastoconidia and hyphae. Infect Immun 2005; 73: 7458–7464.
  • Netea MG, Sutmuller R, Hermann C, . Toll-like receptor 2 suppresses immunity against Candida albicans through induction of IL-10 and regulatory T cells. J Immunol 2004; 172: 3712–3718.
  • Wang JE, Warris A, Ellingsen EA, . Involvement of CD14 and toll-like receptors in activation of human monocytes by Aspergillus fumigatus hyphae. Infect Immun 2001; 69: 2402–2406.
  • Mambula SS, Sau K, Henneke P, Golenbock DT, Levitz SM. Toll-like receptor (TLR) signaling in response to Aspergillus fumigatus. J Biol Chem 2002; 277: 39320–39326.
  • Netea MG, Warris A, Van der Meer JW, . Aspergillus fumigatus evades immune recognition during germination through loss of toll-like receptor-4-mediated signal transduction. J Infect Dis 2003; 188: 320–326.
  • Tachado SD, Zhang J, Zhu J, . Pneumocystis-mediated IL-8 release by macrophages requires coexpression of mannose receptors and TLR2. J Leukoc Biol 2007; 81: 205–211.
  • Xaplanteri P, Lagoumintzis G, Dimitracopoulos G, Paliogianni F. Synergistic regulation of Pseudomonas aeruginosa-induced cytokine production in human monocytes by mannose receptor and TLR2. Eur J Immunol 2009; 39: 1–11.
  • Kahn S, Wleklinski M, Aruffo A, Farr A, Coder D, Kahn M. Trypanosoma cruzi amastigote adhesion to macrophages is facilitated by the mannose receptor. J Exp Med 1995; 182: 1243–1258.
  • Pontow SE, Kery V, Stahl PD. Mannose receptor. Int Rev Cytol 1992; 137B: 221–244.

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