Innate immunity to Candida albicans

Japanese Dental Science Review - Tập 51 - Trang 59-64 - 2015
Yusuke Kiyoura1, Riyoko Tamai1
1Department of Oral Medical Science, Ohu University School of Dentistry, 31-1 Misumido, Tomitamachi, Koriyama, Fukushima 963-8611, Japan

Tài liệu tham khảo

Samaranayake, 1989, Oral carriage of Candida species and coliforms in patients with burning mouth syndrome, J Oral Pathol Med, 18, 233, 10.1111/j.1600-0714.1989.tb00769.x Kaloriti, 2012, Combinatorial stresses kill pathogenic Candida species, Med Mycol, 50, 699, 10.3109/13693786.2012.672770 Netea, 2006, Immune sensing of Candida albicans requires cooperative recognition of mannans and glucans by lectin and Toll-like receptors, J Clin Invest, 116, 1642, 10.1172/JCI27114 Willment, 2008, C-type lectin receptors in antifungal immunity, Trends Microbiol, 16, 27, 10.1016/j.tim.2007.10.012 Weindl, 2010, Epithelial cells and innate antifungal defense, J Dent Res, 89, 666, 10.1177/0022034510368784 Tamai, 2012, Amphotericin B up-regulates lipid A-induced IL-6 production via caspase-8, J Dent Res, 91, 709, 10.1177/0022034512446486 Ishida-Okawara, 2007, Neutrophil activation and arteritis induced by C. albicans water-soluble mannoprotein-beta-glucan complex (CAWS), Exp Mol Pathol, 82, 220, 10.1016/j.yexmp.2006.05.006 Underhill, 2005, Dectin-1 activates Syk tyrosine kinase in a dynamic subset of macrophages for reactive oxygen production, Blood, 106, 2543, 10.1182/blood-2005-03-1239 Ma, 2012, Dectin-1-triggered recruitment of light chain 3 protein to phagosomes facilitates major histocompatibility complex class II presentation of fungal-derived antigens, J Biol Chem, 287, 34149, 10.1074/jbc.M112.382812 Wellington, 2009, Live Candida albicans suppresses production of reactive oxygen species in phagocytes, Infect Immun, 77, 405, 10.1128/IAI.00860-08 Kapteyn, 2000, The cell wall architecture of Candida albicans wild-type cells and cell wall-defective mutants, Mol Microbiol, 35, 601, 10.1046/j.1365-2958.2000.01729.x McKenzie, 2010, Contribution of Candida albicans cell wall components to recognition by and escape from murine macrophages, Infect Immun, 78, 1650, 10.1128/IAI.00001-10 Jouault, 2006, Specific recognition of Candida albicans by macrophages requires galectin-3 to discriminate Saccharomyces cerevisiae and needs association with TLR2 for signaling, J Immunol, 177, 4679, 10.4049/jimmunol.177.7.4679 Kankkunen, 2010, (1,3)-Beta-glucans activate both dectin-1 and NLRP3 inflammasome in human macrophages, J Immunol, 184, 6335, 10.4049/jimmunol.0903019 Mora-Montes, 2011, Recognition and blocking of innate immunity cells by Candida albicans chitin, Infect Immun, 79, 1961, 10.1128/IAI.01282-10 Mullin, 1997, Mechanism of Ca2+ and monosaccharide binding to a C-type carbohydrate-recognition domain of the macrophage mannose receptor, J Biol Chem, 272, 5668, 10.1074/jbc.272.9.5668 Schaller, 1998, Differential expression of secreted aspartyl proteinases in a model of human oral candidosis and in patient samples from the oral cavity, Mol Microbiol, 29, 605, 10.1046/j.1365-2958.1998.00957.x Villar, 2007, Mucosal tissue invasion by Candida albicans is associated with E-cadherin degradation, mediated by transcription factor Rim101p and protease Sap5p, Infect Immun, 75, 2126, 10.1128/IAI.00054-07 d’Ostiani, 2000, Dendritic cells discriminate between yeasts and hyphae of the fungus Candida albicans. Implications for initiation of T helper cell immunity in vitro and in vivo, J Exp Med, 191, 1661, 10.1084/jem.191.10.1661 Tsai, 2011, Human antimicrobial peptide LL-37 inhibits adhesion of Candida albicans by interacting with yeast cell-wall carbohydrates, PLoS ONE, 6, e17755, 10.1371/journal.pone.0017755 Lopez-Garcia, 2005, Anti-fungal activity of cathelicidins and their potential role in Candida albicans skin infection, J Invest Dermatol, 125, 108, 10.1111/j.0022-202X.2005.23713.x den Hertog, 2005, Candidacidal effects of two antimicrobial peptides: histatin 5 causes small membrane defects, but LL-37 causes massive disruption of the cell membrane, Biochem J, 388, 689, 10.1042/BJ20042099 Yamaguchi, 2002, Identification of multiple novel epididymis-specific beta-defensin isoforms in humans and mice, J Immunol, 169, 2516, 10.4049/jimmunol.169.5.2516 Diamond, 2001, Detection of beta-defensins secreted by human oral epithelial cells, J Immunol Methods, 256, 65, 10.1016/S0022-1759(01)00442-2 Joly, 2004, Human beta-defensins 2 and 3 demonstrate strain-selective activity against oral microorganisms, J Clin Microbiol, 42, 1024, 10.1128/JCM.42.3.1024-1029.2004 Vylkova, 2007, Human beta-defensins kill Candida albicans in an energy-dependent and salt-sensitive manner without causing membrane disruption, Antimicrob Agents Chemother, 51, 154, 10.1128/AAC.00478-06 Oppenheim, 1988, Histatins, a novel family of histidine-rich proteins in human parotid secretion. Isolation, characterization, primary structure, and fungistatic effects on Candida albicans, J Biol Chem, 263, 7472, 10.1016/S0021-9258(18)68522-9 Strijbis, 2008, Carnitine-dependent transport of acetyl coenzyme A in Candida albicans is essential for growth on nonfermentable carbon sources and contributes to biofilm formation, Eukaryot Cell, 7, 610, 10.1128/EC.00017-08 Kondo, 2012, Dissecting negative regulation of Toll-like receptor signaling, Trends Immunol, 33, 449, 10.1016/j.it.2012.05.002 Gantner, 2003, Collaborative induction of inflammatory responses by dectin-1 and Toll-like receptor 2, J Exp Med, 197, 1107, 10.1084/jem.20021787 van der Graaf, 2005, Differential cytokine production and Toll-like receptor signaling pathways by Candida albicans blastoconidia and hyphae, Infect Immun, 73, 7458, 10.1128/IAI.73.11.7458-7464.2005 Bellocchio, 2004, The contribution of the Toll-like/IL-1 receptor superfamily to innate and adaptive immunity to fungal pathogens in vivo, J Immunol, 172, 3059, 10.4049/jimmunol.172.5.3059 Villamon, 2004, Toll-like receptor-2 is essential in murine defenses against Candida albicans infections, Microbes Infect, 6, 1, 10.1016/j.micinf.2003.09.020 Miyazato, 2009, Toll-like receptor 9-dependent activation of myeloid dendritic cells by deoxynucleic acids from Candida albicans, Infect Immun, 77, 3056, 10.1128/IAI.00840-08 Brown, 2001, Immune recognition. A new receptor for beta-glucans, Nature, 413, 36, 10.1038/35092620 Brown, 2002, Dectin-1 is a major beta-glucan receptor on macrophages, J Exp Med, 196, 407, 10.1084/jem.20020470 Taylor, 2002, The beta-glucan receptor, dectin-1, is predominantly expressed on the surface of cells of the monocyte/macrophage and neutrophil lineages, J Immunol, 169, 3876, 10.4049/jimmunol.169.7.3876 Ferwerda, 2008, Dectin-1 synergizes with TLR2 and TLR4 for cytokine production in human primary monocytes and macrophages, Cell Microbiol, 10, 2058, 10.1111/j.1462-5822.2008.01188.x Xu, 2009, Activated dectin-1 localizes to lipid raft microdomains for signaling and activation of phagocytosis and cytokine production in dendritic cells, J Biol Chem, 284, 22005, 10.1074/jbc.M109.009076 Li, 2011, The beta-glucan receptor Dectin-1 activates the integrin Mac-1 in neutrophils via Vav protein signaling to promote Candida albicans clearance, Cell Host Microbe, 10, 603, 10.1016/j.chom.2011.10.009 Sato, 2006, Dectin-2 is a pattern recognition receptor for fungi that couples with the Fc receptor gamma chain to induce innate immune responses, J Biol Chem, 281, 38854, 10.1074/jbc.M606542200 Saijo, 2010, Dectin-2 recognition of alpha-mannans and induction of Th17 cell differentiation is essential for host defense against Candida albicans, Immunity, 32, 681, 10.1016/j.immuni.2010.05.001 Gorjestani, 2011, Phospholipase Cγ2 (PLCγ2) is a key component in Dectin-2 signaling pathway, mediating anti-fungal innate immune responses, J Biol Chem, 286, 43651, 10.1074/jbc.M111.307389 Zhu, 2013, C-type lectin receptors Dectin-3 and Dectin-2 form a heterodimeric pattern-recognition receptor for host defense against fungal infection, Immunity, 39, 324, 10.1016/j.immuni.2013.05.017 Balch, 1998, Cloning of a novel C-type lectin expressed by murine macrophages, J Biol Chem, 273, 18656, 10.1074/jbc.273.29.18656 Partridge, 2004, Regulation of cytokine receptors by Golgi N-glycan processing and endocytosis, Science, 306, 120, 10.1126/science.1102109 Argueso, 2009, Association of cell surface mucins with galectin-3 contributes to the ocular surface epithelial barrier, J Biol Chem, 284, 23037, 10.1074/jbc.M109.033332 Stillman, 2006, Galectin-3 and galectin-1 bind distinct cell surface glycoprotein receptors to induce T cell death, J Immunol, 176, 778, 10.4049/jimmunol.176.2.778 Esteban, 2011, Fungal recognition is mediated by the association of dectin-1 and galectin-3 in macrophages, Proc Natl Acad Sci U S A, 108, 14270, 10.1073/pnas.1111415108 Larsen, 2011, Galectin-3 and the skin, J Dermatol Sci, 64, 85, 10.1016/j.jdermsci.2011.07.008 Baptiste, 2007, Mechano-transduction mediated secretion and uptake of galectin-3 in breast carcinoma cells: implications in the extracellular functions of the lectin, Exp Cell Res, 313, 652, 10.1016/j.yexcr.2006.11.005 Tamai, 2014, Candida albicans and Candida parapsilosis rapidly up-regulate galectin-3 secretion by human gingival epithelial cells, Mycopathologia, 177, 75, 10.1007/s11046-013-9725-1 Linden, 2013, Galectin-3 plays an important role in protection against disseminated candidiasis, Med Mycol, 51, 641, 10.3109/13693786.2013.770607 Kohatsu, 2006, Galectin-3 induces death of Candida species expressing specific beta-1,2-linked mannans, J Immunol, 177, 4718, 10.4049/jimmunol.177.7.4718 Goetz, 2008, Concerted regulation of focal adhesion dynamics by galectin-3 and tyrosine-phosphorylated caveolin-1, J Cell Biol, 180, 1261, 10.1083/jcb.200709019 Papaspyridonos, 2008, Galectin-3 is an amplifier of inflammation in atherosclerotic plaque progression through macrophage activation and monocyte chemoattraction, Arterioscler Thromb Vasc Biol, 28, 433, 10.1161/ATVBAHA.107.159160 Fernandes Bertocchi, 2008, A role for galectin-3 in renal tissue damage triggered by ischemia and reperfusion injury, Transpl Int, 21, 999, 10.1111/j.1432-2277.2008.00705.x Cambi, 2003, The C-type lectin DC-SIGN (CD209) is an antigen-uptake receptor for Candida albicans on dendritic cells, Eur J Immunol, 33, 532, 10.1002/immu.200310029 Rennemeier, 2011, Seminal plasma protects human spermatozoa and pathogenic yeasts from capture by dendritic cells, Hum Reprod, 26, 987, 10.1093/humrep/der038 MacCallum, 2006, Different consequences of ACE2 and SWI5 gene disruptions for virulence of pathogenic and nonpathogenic yeasts, Infect Immun, 74, 5244, 10.1128/IAI.00817-06 Valera, 2008, Costimulation of dectin-1 and DC-SIGN triggers the arachidonic acid cascade in human monocyte-derived dendritic cells, J Immunol, 180, 5727, 10.4049/jimmunol.180.8.5727 Wileman, 1986, Identification of the macrophage mannose receptor as a 175-kDa membrane protein, Proc Natl Acad Sci U S A, 83, 2501, 10.1073/pnas.83.8.2501 van de Veerdonk, 2009, The macrophage mannose receptor induces IL-17 in response to Candida albicans, Cell Host Microbe, 5, 329, 10.1016/j.chom.2009.02.006 Zelante, 2012, Sensing of mammalian IL-17A regulates fungal adaptation and virulence, Nat Commun, 3, 683, 10.1038/ncomms1685 Heinsbroek, 2008, Stage-specific sampling by pattern recognition receptors during Candida albicans phagocytosis, PLoS Pathog, 4, e1000218, 10.1371/journal.ppat.1000218 Ostrosky-Zeichner, 2003, Amphotericin B: time for a new “gold standard”, Clin Infect Dis, 37, 415, 10.1086/376634