[1] Minotto R, Bernardi CD, Mallmann LF, et al. Chromoblastomycosis:A review of 100 cases in the state of Rio Grande do Sul Brazil[J]. J Am Acad Dermatol, 2001, 44(4):585-592. [2] Dixon DM, Polak-Wyss A. The medically important dematiaceous fungi and their identification[J]. Mycoses, 1991, 34(1-2):1-18. [3] López Martínez R, Méndez Tovar LJ.Chromoblastomycosis[J]. Clin Dermatol, 2007, 25(2):188-194. [4] Eisenman HC, Casadevall A. Synthesis and assembly of fungal melanin[J]. Appl Microbiol Biotechnol, 2012, 93(3):931-940. [5] Revankar SG, Sutton DA. Melanized fungi in human disease[J]. Clin Microbiol Rev, 2010, 23(4):884-928. [6] Brandt ME, Warnock DW. Epidemiology, clinical manifestations, and therapy of infection caused by dematiaceous fungi[J]. J Chemother, 2003,15(Suppl 2):36-47. [7] Takei H, Goodman JC, Powell SZ. Cerebral phaeohyphomycosis caused by Cladophialophora bantiana and Fonsecaea monophora:report of three cases[J]. Clin Neuropathol, 2007, 26(1):21-27. [8] Surash S, Tyagi A, De Hoog GS, et al. Cerebral phaeohyphomycosis caused by Fonsecaea monophora[J]. Med Mycol, 2005, 43(5):465-472. [9] Esterre P, Andriantsimahavandy A. History of a cutaneous lesion:chromomycosis[J]. Arch Inst Pasteur Madagascar 1993, 60(1-2):21-25. [10] Souza ET, Silva-Filho FC, De SouzaW, et al. Identification of sialic acids on the cell surface of hyphae and conidia of the human pathogen Fonsecaea pedrosoi[J]. J Med Vet Mycol 1986,24(2):145-154. [11] Nóbrega YK, Lozano VF, de Araújo TS, et al. The cell wall fraction from Fonsecaea pedrosoi stimulates production of different profiles of cytokines and nitric oxide by murine peritoneal cells in vitro[J]. Mycopathologia, 2010,170(2):89-98. [12] Jacobson ES. Pathogenic roles for fungal melanins[J]. Clin Microbiol Rev, 2000, 13(4):708-817. [13] Langfelder K, Streibel M, Jahn B, et al. Biosynthesis of fungal melanins and their importance for human pathogenic fungi[J]. Fungal Genet Biol, 2003, 38(2):143-158. [14] Hamilton A,Gomez B. Melanins in fungal pathogens[J]. J Med Microbiol, 2002, 51(3):189-191. [15] Zhu X, Williamson PR. Role of laccase in the biology and virulence of Cryptococcus neoformans[J]. FEMS yeast Re, 2004, 5(1):1-10. [16] Romero-Martinez R, Wheeler M, Guerrero-Plata A, et al. Biosynthesis and functions of melanin in Sporothrix schenckii[J]. Infect Immun, 2000, 68(6):3696-3703. [17] Youngchim S, Pornsuwan S, Nosanchuk JD, et al. Melanogenesis in dermatophyte species in vitro and during infection[J]. Microbiology, 2011, 157(8):2348-2356. [18] Taborda CP, da Silva MB, Nosanchuk JD, et al. Melanin as a virulence factor of Paracoccidioides brasiliensis and other dimorphic pathogenic fungi:a minireview[J]. Mycopathologia,2010, 23(4):884-928. [19] Wheeler MH, Bell AA. Melanins and their importance in pathogenic fungi[J]. Curr Top Med Mycol, 1988, 2(10):338-387. [20] Howard RJ, Valent B. Breaking and entering:host penetration by the fungal rice blast pathogen Magnaporthe grisea[J]. Annu Rev Microbiol, 1996, 50(1):491-512. [21] Butler MJ, Day AW, Henson JM, et al. Pathogenic properties of fungal melanins[J]. Mycologia, 2001, 93(1):1-8. [22] Da SM, Marques AF, Nosanchuk JD, et al. Melanin in the dimorphic fungal pathogen Paracoccidioides brasiliensis:effects on phagocytosis, intracellular resistance and drug susceptibility[J]. Microbes Infect, 2006, 8(1):197-205. [23] Garcia-Rivera J, Tucker SC, Feldmesser M, et al. Laccase expression in murine pulmonary Cryptococcus neoformans infection[J]. Infec Immun, 2005, 73(5):3124-3127. [24] Rozental S, Alviano CS, de Souza W. The in vitro susceptibility of Fonsecaea pedrosoi to activated macrophages[J]. Mycopathologia, 1994, 126(2):85-91. [25] Ischiropoulos H, Gow A. Pathophysiological functions of nitric oxide-mediated protein modifications[J]. Toxicology, 2005, 208(2):299-303. [26] Murad F. Signal transduction using nitric oxide and cyclic guanosine monophosphate[J]. J Am Med Assoc, 1996, 276(14):1189-1192. [27] Mullershausen F, Koesling D, Friebe A. NO-sensitive guanylyl cyclase and NO-induced feedback inhibition in cGMP signaling[J]. Front Biosci, 2005, 10(1):1269-1278. [28] Beltr'an B, Mathur A, Duchen MR, et al. The effect of nitric oxide on cell respiration:a key to understanding its role in cell survival or death[J]. Proc. Natl Acad Sci USA,2000, 97(26):14602-14607. [29] Hagen T, Taylor CT, Lam F,et al. Redistribution of intracellular oxygen in hypoxia by nitric oxide:effect of HIF1alpha[J]. Science, 2003,302(5652):1975-1978. [30] Stamler JS, Lamas S, Fang FC. Nitrosylation:the prototypic redox-based signaling mechanism[J]. Cell, 2001, 106(6):675-683. [31] Stamler JS, Toone EJ, Lipton SA, et al. (S)NO signals:translocation, regulation, and a consensus motif[J]. Neuron, 1997, 18(5):691-696. [32] Wang J, Higgins VJ. Nitric oxide has a regulatory effect in the germination of conidia of Colletotrichum coccodes[J]. Fungal Genet Biol, 2005, 42(4):284-292. [33] Alviano DS, Rodrigues ML, Almeida CA,et al. Differential expression of sialylglycoconjugates and sialidase activity in distinct morphological stages of Fonsecaea pedrosoi[J]. Arch Microbiol, 2004, 181(4):278-286. [34] Gimenes VMF, Souza MG, Ferreira KS, et al. Cytokines and lymphocyte proliferation in patients with different clinical forms of chromoblastomycosis[J]. Microbes Infect, 2005, 7(4):708-713. [35] d'Avila SC, Pagliari C, Duarte MI. The cell-mediated immune reaction in the cutaneous lesion of chromoblastomycosis and their correlation with different clinical forms of the disease[J]. Mycopathologia, 2003, 156(2):51-60. [36] Allendoerfer R, Deepe GS Jr. Intrapulmonary response to Histoplasma capsulatum in gamma interferon knockout mice[J]. Infect Immun, 1997, 65(7):2564-2569. [37] Wozniak KL, Ravi S, Macias S, et al. Insights into the mechanisms of protective immunity against Cryptococcus neoformans infection using a mouse model of pulmonary cruptococcosis[J]. PLoS One,2009, 4(9):e6854. [38] Naundorf S, Schröder M, Höflich C, et al. IL-10 interferes directly with TCR-induced IFN-gamma but not IL-17 production in memory T cells[J]. Eur J Immunol, 2009, 39(5):1435-1446. |