33
Views
2
CrossRef citations to date
0
Altmetric
Original

Gene transcription studies of Candida albicans following infection of HEp2 epithelial cells

, , &
Pages 329-334 | Received 04 Aug 2005, Published online: 09 Jul 2009

References

  • Calderone RA. Taxonomy and biology of Candida. Candida and Candidiasis, R Calderone. ASM Press, Washington, DC 2002; 15–29
  • Calderone RA, Fonzi WA. Virulence factors of Candida albicans. Trends Microbiol 2001; 9: 327–335
  • Wenzel RP. Nosocomial candidiasis: risk factors and attributable mortality. Clin Infect Dis 1995; 20: 1531–1534
  • Calderone R, Suzuki S, Cannon R, et al. Candida: adherence, signaling and virulence. Med Mycol 2000; 38(Supp1)125–137
  • Navarro-Garcia F, Sanchez M, Nombela C, Pla J. Virulence genes in the pathogenic yeast Candida albicans. FEMS Microbiol Rev 2001; 25: 245–268
  • Segal E, Sandovsky-Losica H. Basis for Candida albicans adhesion and penetration. Fungal Diseases, PH Jacobs, L Nall. Marcel Decker, New York 1997; 321–334
  • Segal E, Sandovsky-Losica H. Interaction of Candida albicans with mammalian tissues in vitro and in vivo. Methods Enzymol 1995; 253: 439–452
  • Sundstrom P. Adhesion in Candida spp. Cell Microbiol 2002; 4: 461–469
  • Yang YL. Virulence factors of Candida species. J Microbiol Immunol Infect 2003; 36: 223–228
  • Bailey A, Wadsworth E, Calderone R. Adherence of Candida albicans to human buccal epithelial cells: host induced proteins synthesis and signaling events. Infect Immun 1995; 63: 569–572
  • Bodo M, Becchetti E, Baroni T, et al. Internalization of Candida albicans and cytoskeletal organization in macrophages and fibroblasts treated with concanavalin A. Cell Mol Biol 1995; 41: 297–305
  • Filler SG, Swerdloff JN, Hobbs C, Luckett PM. Penetration and damage of endothelial cells by Candida albicans. Infect Immun 1995; 63: 976–983
  • Sandovsky-Losica H, Berdicevsky I, Tsarfaty I, Segal E. Effect of Candida albicans metabolite(s) on cellular actin. FEMS Micobiol Lett 2002; 215: 57–62
  • Tsarfaty I, Sandovsky-Losica H, Mittelman L, Berdicevsky I, Segal E. Cellular actin is affected by interaction with Candida albicans. FEMS Micobiol Lett 2000; 189: 225–232
  • Chauhan N, Inglis D., Roman E, et al. Candida albicans response regulator gene SSK1 regulates a subset of genes whose functions are associated with cell wall biosynthesis and adaptation to oxidative stress. Eukaryotic Cell 2003; 2: 1018–1024
  • Sohn K, Urban C, Brunner H, Rupp S. EFG1 is a major regulator of cell wall dynamics in Candida albicans as revealed by DNA microarrays. Mol Microbiol 2003; 47: 89–102
  • Fradin C, Kretschmar M., Nichterlein T, et al. Stage specific gene expression of Candida albicans in human blood. Mol Microbiol 2003; 47: 1523–1543
  • Green CB, Cheng G., Chandra J, et al. RT-PCR detection of Candida albicans ALS gene expression in the reconstituted human epithelium (RHE) model of oral candidiasis and in model biofilms. Microbiology 2004; 150: 267–275
  • Munir A, Murad A, d'Enfert C, et al. Transcript profiling in Candida albicans reveals new cellular functions for the transcriptional repressors CaTup1, CaMig1 and CaNrg1. Mol Microbiol 2001; 42: 981–993
  • Nguyen MH, Cheng S, Clancy CJ. Assessment of Candida albicans genes expressed during infections as a tool to understand pathogenesis. Med Mycol 2004; 42: 293–304
  • Whiteway M, Oberholzer U. Candida morphogenesis and host- pathogen interactions. Curr Opin Microbiol 2004; 7: 350–357
  • Almeida RA, Calvinho LF, Oliver SP. Influence of protein kinase inhibitors on Streptococcus uberis internalization into bovine mammary epithelial cells. Microb Path 2000; 28: 9–16
  • Finlay B, Ruschkowski BS, Dedhar S. Cytoskeletal rearrangements accompanying Salmonella entry into epithelial cells. J Cell Sci 1991; 99: 283–296
  • Gouin E, Gantelet H, Egile C, et al. A comparative study of actin-based motilities of the pathogenic bacteria Listeria monocytogenes, Shigella flexneri, and Rickettsia conorii. J Cell Sci 1999; 112: 1697–1708
  • Gruenheid S, Finlay B. Microbial pathogenesis and cytoskeletal function. Nature 2003; 422: 775–781
  • Hayward RD, Koronakis V. Direct modulation of the host cell cytoskeleton by Salmonella actin-binding proteins. Trends Cell Biol 2002; 12: 15–20
  • Hayward R D, Koronakis V. Direct nucleation and bundling of actin by the Sip C protein of invasive Salmonella. EMBO J 1999; 18: 4926–4934
  • McGhie E J, Hayward RD, Koronakis V. Cooperation between actin binding proteins of invasive Salmonella; Sip A potentiates Sip C nucleation and bundling of actin. EMBO J 2001; 20: 2131–2139
  • Sukumaran SK, Prasadarao NV. Regulation of protein kinase C in Escherichia coli K1 invasion of human brain microvascular endothelial cells. J Biol Chem 2002; 277: 12253–12262
  • Chen SHM, Stins MF, Huang SH, et al. Cryptococcus neoformans induces alterations in the cytoskeleton of human brain microvascular endothelial cells. J Med Microbiol 2003; 52: 961–970
  • Mendes-Giannini M, Hanna JS, Monteiro de Silva SA, et al. Invasion of epithelial mammalian cells by Paracoccidioides brasiliensis leads to cytoskeletal rearrangement and apoptosis of host cell. Microbes Infect 2004; 6: 882–891
  • Wasylnka JA, Moore MM. Uptake of Aspergillus fumigatus conidia by phagocytic and nonphagocytic cells in vitro: Quantitation using strains expressing green fluorescent protein. Infect Immun 2002; 70: 3156–3163
  • Cheng G, Wozniak K, Wallig MA, et al. Comparison between Candida albicans agglutinin-like sequence gene expression patterns in human clinical specimens and models of vaginal candidiasis. Infect Immun 2005; 73: 1656–1663
  • Hoyer LL. The ALS gene family of Candida albicans. Trends Microbiol 2001; 9: 176–180
  • Hoyer LL, Fundyga R, Hecht JE, et al. Characterization of agglutinin-like sequence genes from non-albicans Candida and phylogenetic analysis of the ALS family. Genetics 2000; 157: 1555–1567
  • Hoyer LL, Payne TL, Hecht JE. Identification of Candida albicans ALS2 and ALS4 and location of Als proteins to the fungal cell surface. J Bact 1998; 180: 5334–5343
  • Hoyer LL, Scherer S, Shatzman AR, Livi GP. Candida albicans ALS1: domain related to a Saccharomyces cerevisiae sexual agglutinin separated by a repeating motif. Mol Microbiol 1995; 15: 39–54
  • Zhang N, Harrex AL, Holland BR., et al. Sixty alleles of the ALS7 open reading frame in Candida albicans: ALS7 is a hypermutable contingency locus. Genome Res 2003; 13: 2005–2017

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.