[1] Douglas LJ. Candida biofilms and their role in infection[J]. Trends Microbiol, 2003,11(1):30-36. [2] Ganguly S, Mitchell AP. Mucosal biofilms of Candida albicans[J]. Curr Opin Microbiol, 2011,14(4):380-385. [3] Chandra J, Kuhn DM, Mukherjee PK, et al. Biofilm formation by the fungal pathogen Candida albicans: development, architecture, and drug resistance[J]. J Bacteriol, 2001,183(18):5385-5394. [4] Seneviratne CJ, Wang Y, Jin L, et al. Candida albicans biofilm formation is associated with increased anti-oxidative capacities[J]. Proteomics, 2008,8(14):2936-2947. [5] Kuhn D, Ghannoum M. Candida biofilms: antifungal resistance and emerging therapeutic options[J]. Curr Opin Investig Drugs, 2004,5(2):186. [6] García-Sánchez S, Aubert S, Iraqui I, et al. Candida albicans biofilms: a developmental state associated with specific and stable gene expression patterns[J]. Eukaryot Cell, 2004,3(2):536-545. [7] Yeater KM, Chandra J, Cheng G, et al. Temporal analysis of Candida albicans gene expression during biofilm development[J]. Microbiology, 2007,153(8):2373. [8] Nett JE, Lepak AJ, Marchillo K, et al. Time course global gene expression analysis of an in vivo Candida biofilm[J]. J Infect Dis, 2009,200(2):307. [9] Hoyer LL, Green CB, Oh SH, et al. Discovering the secrets of the Candida albicans agglutinin-like sequence(ALS) gene family-a sticky pursuit[J]. Med Mycol, 2008,46(1):1-15. [10] Nailis H, Kucharíková S,Ricicová M, et al. Real-time PCR expression profiling of genes encoding potential virulence factors in Candida albicans biofilms: identification of model-dependent and-independent gene expression[J]. BMC Microbiol, 2010,10(1):114. [11] Zhao X, Daniels KJ, Oh SH, et al. Candida albicans Als3p is required for wild-type biofilm formation on silicone elastomer surfaces[J], Microbiology, 2006,152(8):2287. [12] Nobile CJ, Schneider HA, Nett JE, et al. Complementary adhesin function in C.albicans biofilm formation [J]. Curr Biol, 2008,18(14):1017-1024. [13] Nobile CJ, Nett JE, Andes DR, et al. Function of Candida albicans adhesin Hwp1 in biofilm formation[J]. Eukaryot Cell, 2006,5(10):1604-1610. [14] Ene IV, Bennett RJ. Hwp1 and related adhesins contribute to both mating and biofilm formation in Candida albicans[J]. Eukaryot Cell, 2009,8(12):1909-1913. [15] Li F, Svarovsky MJ, Karlsson AJ, et al. Eap1p, an adhesin that mediates Candida albicans biofilm formation in vitro and in vivo[J]. Eukaryot Cell, 2007,6(6):931-939. [16] Lewis RE, Lo HJ, Raad II, et al. Lack of catheter infection by the efg1/efg1 cph1/cph1 double-null mutant, a Candida albicans strain that is defective in filamentous growth[J]. Antimicrob Agents Chemother, 2002,46(4):1153-1155. [17] Wang YC, Lan CY, Hsieh WP, et al. Global screening of potential Candida albicans biofilm-related transcription factors via network comparison[J]. BMC Bioinformatics, 2010,11(1):53. [18] Braun BR, Head WS, Wang MX, et al. Identification and characterization of TUP1-regulated genes in Candida albicans[J]. Genetics, 2000,156(1):31. [19] Sudbery PE. Growth of Candida albicans hyphae[J]. Nat Rev Microbiol, 2011,9(10):737-748. [20] Nobile CJ, Mitchell AP. Regulation of Cell-Surface Genes and Biofilm Formation by the C.albicans Transcription Factor Bcr1p[J]. Curr Biol, 2005,15(12):1150-1155. [21] Dwivedi P, Thompson A, Xie Z, et al. Role of Bcr1-activated genes Hwp1 and Hyr1 in Candida albicans oral mucosal biofilms and neutrophil evasion[J]. PloS One, 2011,6(1):e16218. |