Dynamic, Morphotype-Specific Candida albicans β-Glucan Exposure during Infection and Drug Treatment
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DA Enoch, 2006, Invasive fungal infections: a review of epidemiology and management options., J Med Microbiol, 55, 809, 10.1099/jmm.0.46548-0
MG Netea, 2008, An integrated model of the recognition of Candida albicans by the innate immune system., Nat Rev Microbiol, 6, 67, 10.1038/nrmicro1815
KM Dennehy, 2007, The role of the beta-glucan receptor Dectin-1 in control of fungal infection., J Leukoc Biol, 82, 253, 10.1189/jlb.1206753
TM Hohl, 2008, Caspofungin Modulates Inflammatory Responses to Aspergillus fumigatus through Stage-Specific Effects on Fungal beta-Glucan Exposure., J Infect Dis
TM Hohl, 2005, Aspergillus fumigatus triggers inflammatory responses by stage-specific beta-glucan display., PLoS Pathog, 1, e30, 10.1371/journal.ppat.0010030
GA Lamaris, 2008, Caspofungin-Mediated beta-Glucan Unmasking and Enhancement of Human Polymorphonuclear Neutrophil Activity against Aspergillus and Non-Aspergillus Hyphae., J Infect Dis
C Steele, 2005, The beta-glucan receptor dectin-1 recognizes specific morphologies of Aspergillus fumigatus., PLoS Pathog, 1, e42, 10.1371/journal.ppat.0010042
RT Wheeler, 2006, A drug-sensitive genetic network masks fungi from the immune system., PLoS Pathog, 2, e35, 10.1371/journal.ppat.0020035
BN Gantner, 2005, Dectin-1 mediates macrophage recognition of Candida albicans yeast but not filaments., EMBO J, 24, 1277, 10.1038/sj.emboj.7600594
NA Gow, 2007, Immune recognition of Candida albicans beta-glucan by dectin-1., J Infect Dis, 196, 1565, 10.1086/523110
GD Brown, 2003, Dectin-1 mediates the biological effects of beta-glucans., J Exp Med, 197, 1119, 10.1084/jem.20021890
BN Gantner, 2003, Collaborative induction of inflammatory responses by dectin-1 and Toll-like receptor 2., J Exp Med, 197, 1107, 10.1084/jem.20021787
S Saijo, 2007, Dectin-1 is required for host defense against Pneumocystis carinii but not against Candida albicans., Nat Immunol, 8, 39, 10.1038/ni1425
PR Taylor, 2007, Dectin-1 is required for beta-glucan recognition and control of fungal infection., Nat Immunol, 8, 31, 10.1038/ni1408
CF 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
L Romani, 2004, The exploitation of distinct recognition receptors in dendritic cells determines the full range of host immune relationships with Candida albicans., Int Immunol, 16, 149, 10.1093/intimm/dxh012
JA Jayatilake, 2006, Quantitative evaluation of tissue invasion by wild type, hyphal and SAP mutants of Candida albicans, and non-albicans Candida species in reconstituted human oral epithelium., J Oral Pathol Med, 35, 484, 10.1111/j.1600-0714.2006.00435.x
CA Kumamoto, 2005, Contributions of hyphae and hypha-co-regulated genes to Candida albicans virulence., Cell Microbiol, 7, 1546, 10.1111/j.1462-5822.2005.00616.x
SP Saville, 2003, Engineered control of cell morphology in vivo reveals distinct roles for yeast and filamentous forms of Candida albicans during infection., Eukaryot Cell, 2, 1053, 10.1128/EC.2.5.1053-1060.2003
CA 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
B Rozell, 2006, Host-pathogen interactions and the pathological consequences of acute systemic Candida albicans infections in mice., Curr Drug Targets, 7, 483, 10.2174/138945006776359449
JF Staab, 2003, Integrative, multifunctional plasmids for hypha-specific or constitutive expression of green fluorescent protein in Candida albicans., Microbiology, 149, 2977, 10.1099/mic.0.26445-0
BR Braun, 1997, Control of filament formation in Candida albicans by the transcriptional repressor TUP1., Science, 277, 105, 10.1126/science.277.5322.105
AM Murad, 2001, NRG1 represses yeast-hypha morphogenesis and hypha-specific gene expression in Candida albicans., EMBO J, 20, 4742, 10.1093/emboj/20.17.4742
HJ Lo, 1997, Nonfilamentous C. albicans mutants are avirulent., Cell, 90, 939, 10.1016/S0092-8674(00)80358-X
AE Carpenter, 2006, CellProfiler: image analysis software for identifying and quantifying cell phenotypes., Genome Biol, 7, R100, 10.1186/gb-2006-7-10-r100
LM Lavigne, 1998, The role of recombinant murine IL-12 and IFN-gamma in the pathogenesis of a murine systemic Candida albicans infection., J Immunol, 160, 284, 10.4049/jimmunol.160.1.284
MG Netea, 1999, Fas-FasL interactions modulate host defense against systemic Candida albicans infection., J Infect Dis, 180, 1648, 10.1086/315058
DW Lowman, 2003, Structural characterization of (1–>3)-beta-D-glucans isolated from blastospore and hyphal forms of Candida albicans., Carbohydr Res, 338, 1491, 10.1016/S0008-6215(03)00169-1
J Ruiz-Herrera, 2006, Molecular organization of the cell wall of Candida albicans and its relation to pathogenicity., FEMS Yeast Res, 6, 14, 10.1111/j.1567-1364.2005.00017.x
N Shibata, 2007, Chemical structure of the cell-wall mannan of Candida albicans serotype A and its difference in yeast and hyphal forms., Biochem J, 404, 365, 10.1042/BJ20070081
K Sohn, 2006, Getting in touch with Candida albicans: the cell wall of a fungal pathogen., Curr Drug Targets, 7, 505, 10.2174/138945006776359395
L Castillo, 2006, Genomic response programs of Candida albicans following protoplasting and regeneration., Fungal Genet Biol, 43, 124, 10.1016/j.fgb.2005.12.002
J Shen, 2005, CaNAT1, a heterologous dominant selectable marker for transformation of Candida albicans and other pathogenic Candida species., Infect Immun, 73, 1239, 10.1128/IAI.73.2.1239-1242.2005
WA Fonzi, 1993, Isogenic strain construction and gene mapping in Candida albicans., Genetics, 134, 717, 10.1093/genetics/134.3.717