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Research Article

Analysis of the response of Candida albicans cells to Silver(I)

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Pages 498-505 | Received 07 Jul 2009, Accepted 30 Jul 2009, Published online: 06 Apr 2010

References

  • Benjamin DK, DeLong E, Cotten CM, . Mortality following blood culture in premature infants: increased with Gram-negative bacteremia and candidemia, but not Gram-positive bacteremia. J Perinatol 2004;24:175–180.
  • Kaufman D. Strategies for prevention of neonatal invasive candidiasis. Semin Perinatol 2003;27:414–424.
  • Sims CR, Ostrosky-Zeichner L, Rex JH. Invasive candidiasis in immunocompromised hospitalized patients. Arch Med Res 2005;36:660–671.
  • Ghannoum MA, Rice LB. Antifungal Agents: Mode of action, mechanisms of resistance, and correlation of these mechanisms with bacterial resistance. J Clin Microbiol Rev 1999;12:501–517.
  • Adams AP, Santschi EM, Mellencamp MA. Antibacterial properties of a silver chloride-coated nylon wound dressing. Vet Surg 1999;28:219–225.
  • Coyle B, Kavanagh K, McCann M, . Mode of anti-fungal activity of 1,10-phenanthroline and its Cu(II), Mn(II) and Ag(I) complexes. Biometals 2003;16:321–329.
  • Coyle B, Kinsella P, McCann M, . Induction of apoptosis in yeast and mammalian cells by exposure to 1,10-phenanthroline metal complexes. Toxicol in Vitro 2004;18:63–70.
  • McCann M, Geraghty M, Devereux M, . Insights into the mode of action of the anti-Candida activity of 1,10-phenanthroline and its metal chelates. Metal-Based Drugs 2000;7:185–193.
  • Wright JB, Lam K, Hansen J, . Efficacy of topical silver against fungal burn wound pathogens. Am J Infect Control 1999;27:344–350.
  • Dasgupta MK. Silver peritoneal catheters reduce bacterial colonization. Adv Perit Dial 1994;10:195–198.
  • Monafo WW, Freedman B. Topical therapy for burns. Surg Clin North Am 1987;67:133–145.
  • Wright JB, Lam K, Burrell RE. Wound management in an era of increasing bacterial antibiotic resistance. A role for topical silver treatment. Am J Infect Control 1998;26:572–577.
  • Jain J, Arora S, Rajwade J, . Silver nanoparticles in therapeutics: development of an antimicrobial gel formulation for topical use. Mol Pharm 2009; May. [Epub ahead of print].
  • Percival SL, Bowler PG, Dolman J. Antimicrobial activity of silver-containing dressings on wound microorganisms using an in vitro bio-film model. Internat Wound J 2007;4:186–191.
  • Wlodkowski TJ, Rosenkranz HS. Antifungal activity of silver sulph-adiazine. Lancet 1973;2:39–40.
  • Coyle B, McCann M, Kavanagh K, . Synthesis, X-ray crystal structure, anti-fungal and anti-cancer activity of [Ag2(NH3)2(salH)2] (salH2=salicylic acid). J Inorgan Biochem 2004;98:1361–1366.
  • Curran R, Lenehan J, McCann M, . [Ag2(aca)2]n and [Ag4(aca)4(NH3)2] (acaH = 9-anthracenecarboxylic acid): Synthesis, X-ray crystal structures, antimicrobial and anti-cancer activities. Inorganic Chem Comm 2007;10:1149–1152.
  • Rowan R, Tallon T, Sheahan AM, . Silver bullets in antimicrobial chemotherapy: Synthesis, characterisation and biological screening of some new Ag(I)-containing imidazole complexes. Polyhedron 2006;28:1771–1778.
  • Tilton RC, Rosenberg B. Reversal of the silver inhibition of microorganisms by agar. Appl Microbiol 1978;35:1116–1120.
  • Alonso-Monge R, Navarro-Garcia F, Roman E, . The Hog1 mitogen activated protein kinase is essential in the oxidative stress response and chlamydospore formation in Candida albicans. Eukaryot Cell 2003;2:351–361.
  • Zhang X, de Michele M, Coleman ST, . Analysis of the oxidative stress regulation of the Candida albicans transcription factor, Cap1p. Mol Microbiol 2000;36:618–629.
  • Alarco AM, Raymond M. The bZip transcription factor Cap1p is involved in multidrug resistance and oxidative stress response in Candida albicans. J Bacteriol 1999;181:700–708.
  • Enjalbert B, Smith DA, Cornell MJ, . Role of the Hog1 stress-activated protein kinase in the global transcriptional response to stress in the fungal pathogen Candida albicans. Mol Biol Cell 2006;17:1018–1032.
  • Chauhan N, Latge JP, Calderone R. Signaling and oxidant adaptation in Candida albicans and Aspergillus fumigatus. Nat Rev Micorbiol 2006;4:435–444.
  • Wang Y, Ying-Ying C, Xin-Ming J, . Cap1p is involved in multiple pathways of oxidative stress response in C.albicans.. Free Radic Biol Med 2006;40:1201–1209.
  • McCann M, Coyle B, McKay S, . Synthesis and X-ray crystal structure of [Ag(phendio)2]ClO4 (phendio = 1,10-phenanthroline-5, 6-dione) and its effects on fungal and mammalian cells. Biometals 2004;17:635–645.
  • Moran G, Sullivan DJ, Henman MC, . Anti-fungal drug susceptibilities of oral Candida dubliniensis isolates from human immunode-ficiency virus (HIV)-infected and non-HIV infected subjects and generation of stable fluconazole resistant derivatives in vitro. Antimicrob Agents Chemother 1997;41:617–623.
  • Foster JG, Hess JL. Response of superoxide dismutase and glutathi-one reductase activities in cotton leaf tissue exposed to an atmosphere enriched in oxygen. Plant Physiol 1980;66:487–488.
  • Arana DM, Nombela C, Alonso-Monge R, . The Pbs2 MAP kinase kinase is essential for the oxidative-stress response in the fungal pathogen Candida albicans. Microbiol 2005;151:1033–1049.
  • Kusch H, Engelmann S, Albrecht D, . Proteomic analysis of the oxidative stress response in Candida albicans. Proteomics 2007;7:686–697.
  • Chen D, Toone WM, Mata J, . Global transcriptional responses of fission yeast to environmental stress. Mol Biol Cell 2003;14:214–229.
  • Ikner A, Shiozaki K. Yeast signaling pathways in the oxidative stress response. Mut Res/Fundament Mol Mech Mutagen 2005;569:13–27.
  • Alarco AM, Balan I, Talibi D, . AP1-mediated multidrug resistance in Saccharomyces cerevisiae requires FLR1 encoding a transporter of the major facilitator superfamily. J Biol Chem 1997: 272; 19304–19313.
  • Toda T, Shimanuki M, Yanagida M. Fission yeast genes that confer resistance to staurosporine encode an AP-1-like transcription factor and a protein kinase related to the mammalian ERK1/MAP2 and budding yeast FUS3 and KSS1 kinases. Genes Dev 1991;5:60–73.
  • Moye-Rowley WS, Harshman KD, Parker CS. Yeast YAP1 encodes a novel form of the jun family of transcriptional activator proteins. Genes Dev 1989;3:283–292.
  • Herrero E, Ros J, Bellí G, . Redox control and oxidative stress in yeast cells. Biochim Biophys Acta 2008;1780:1217–1235.
  • Inoue Y, Matsuda T, Sugiyama KI, . Genetic analysis of glutathi-one peroxidase in oxidative stress response of Saccharomyces cerevi-siae. J Biol Chem 1999;274:27002–27009.
  • Enjalbert B, Nantel A, Whiteway M. Stress-induced gene expression in Candida albicans: absence of a general stress response. Mol Biol Cell 2003;14:1460–1467.
  • Moskovitz J, Berlett BS, Poston JM, . The yeast peptide-methio-nine sulfoxide reductase functions as an antioxidant in vivo. Proc Natl Acad Sci USA 1997;94:9585–9589.
  • Hansen J. Inactivation of MXR1 abolishes formation of dimethyl sulfide from dimethyl sulfoxide in Saccharomyces cerevisiae. Appl Environ Microbiol 1999;65:3915–3919.
  • Arora S, Jain J, Rajwade JM, . Cellular responses induced by silver nanoparticles: in vitro studies. Toxicol Lett 2008;179:93–100.
  • Yamazaki T, Yamazaki A, Hibino Y, . Biological impact of contact with metals on cells. In Vivo 2006;20:605–611.
  • Shaik N, Martnez A, Augustin I, . Synthesis of apoptosis-inducing iminophosphorane organogold(III) complexes and study of their interactions with biomolecular targets. Inorg Chem 2009;48:1577–1587.
  • Kelly J, Rowan R, McCann M, . Exposure to caspofungin activates Cap and Hog pathways in Candida albicans. Med Mycol 2009;47:697–706.
  • Bammert GF, Fostel JM. Genome-wide expression patterns in Sac-charomyces cerevisiae: comparison of drug treatments and genetic alterations affecting biosynthesis of ergosterol. Antimicrob Agents Chemother 2000;44:1255–1265.
  • Plowright AT, Schaus SE, Myers AG. Transcriptional response pathways in a yeast strain sensitive to saframycin A and a more potent analog: evidence for a common basis of activity. Chem Biol 2002;9:607–618.
  • Nakayama K, Yamaguchi T, Doi T, . Synergistic combination of direct plasma membrane damage and oxidative stress as a cause of antifungal activity of polyol macrolide antibiotic Niphimycin. J Biosci Bioeng 2002;94:207–211.
  • Hsin YH, Chen CF, Huang S, . The apoptotic effect of nanosilver is mediated by a ROS- and JNK-dependent mechanism involving the mitochondrial pathway in NIH3T3 cells. Toxicol Lett 2008;179:130–139.
  • LePape H, Solano-Serena F, Contini P, . Involvement of reactive oxygen species in the bactericidal activity of activated carbon fibre supporting silver. Bactericidal activity of ACF(Ag) mediated by ROS. J Inorg Biochem 2004;98:1054–1060.

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