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Journal Abstract Search


115 related items for PubMed ID: 15845783

  • 21. ERG1, encoding squalene epoxidase, is located on the right arm of chromosome VII of Saccharomyces cerevisiae.
    Landl KM, Klösch B, Turnowsky F.
    Yeast; 1996 May; 12(6):609-13. PubMed ID: 8771716
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  • 22. The expression of genes involved in the ergosterol biosynthesis pathway in Candida albicans and Candida dubliniensis biofilms exposed to fluconazole.
    Borecká-Melkusová S, Moran GP, Sullivan DJ, Kucharíková S, Chorvát D, Bujdáková H.
    Mycoses; 2009 Mar; 52(2):118-28. PubMed ID: 18627475
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  • 23. Sterol uptake in Candida glabrata: rescue of sterol auxotrophic strains.
    Bard M, Sturm AM, Pierson CA, Brown S, Rogers KM, Nabinger S, Eckstein J, Barbuch R, Lees ND, Howell SA, Hazen KC.
    Diagn Microbiol Infect Dis; 2005 Aug; 52(4):285-93. PubMed ID: 15893902
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  • 26. [Effect of Huanglian Jiedu decoction in combination with fluconazole on ergosterol of fluconazole-resistant Candida albicans].
    Yan YY, Wang TM, Shi GX, Zhang MX, Lu KQ, Shao J, Wang CZ.
    Zhongguo Zhong Yao Za Zhi; 2015 Feb; 40(4):727-32. PubMed ID: 26137698
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  • 28. ABC multidrug transporter Cdr1p of Candida albicans has divergent nucleotide-binding domains which display functional asymmetry.
    Jha S, Dabas N, Karnani N, Saini P, Prasad R.
    FEMS Yeast Res; 2004 Oct; 5(1):63-72. PubMed ID: 15381123
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  • 29. Substitution of threonine-1351 in the multidrug transporter Cdr1p of Candida albicans results in hypersusceptibility to antifungal agents and threonine-1351 is essential for synergic effects of calcineurin inhibitor FK520.
    Shukla S, Ambudkar SV, Prasad R.
    J Antimicrob Chemother; 2004 Jul; 54(1):38-45. PubMed ID: 15190023
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  • 30. Characterization of squalene epoxidase of Saccharomyces cerevisiae by applying terbinafine-sensitive variants.
    Ruckenstuhl C, Lang S, Poschenel A, Eidenberger A, Baral PK, Kohút P, Hapala I, Gruber K, Turnowsky F.
    Antimicrob Agents Chemother; 2007 Jan; 51(1):275-84. PubMed ID: 17043127
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  • 31. Enzymatic properties of squalene epoxidase from Saccharomyces cerevisiae.
    Satoh T, Horie M, Watanabe H, Tsuchiya Y, Kamei T.
    Biol Pharm Bull; 1993 Apr; 16(4):349-52. PubMed ID: 8358382
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  • 32. Disruption of the Candida albicans CYB5 gene results in increased azole sensitivity.
    Rogers KM, Pierson CA, Culbertson NT, Mo C, Sturm AM, Eckstein J, Barbuch R, Lees ND, Bard M.
    Antimicrob Agents Chemother; 2004 Sep; 48(9):3425-35. PubMed ID: 15328107
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  • 33. Lipid raft polarization contributes to hyphal growth in Candida albicans.
    Martin SW, Konopka JB.
    Eukaryot Cell; 2004 Jun; 3(3):675-84. PubMed ID: 15189988
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  • 34. Effects of antifungal agents on ergosterol biosynthesis in Candida albicans and Trichophyton mentagrophytes: differential inhibitory sites of naphthiomate and miconazole.
    Morita T, Nozawa Y.
    J Invest Dermatol; 1985 Nov; 85(5):434-7. PubMed ID: 3902987
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  • 37. Substrates and modulators of the multidrug transporter Cdr1p of Candida albicans in antifungal extracts of medicinal plants.
    Kolaczkowski M, Kolaczkowska A, Sroda K, Ramalhete C, Michalak K, Mulhovo S, Ferreira MJ.
    Mycoses; 2010 Jul; 53(4):305-10. PubMed ID: 19460101
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  • 38. Alanine scanning of all cysteines and construction of a functional cysteine-less Cdr1p, a multidrug ABC transporter of Candida albicans.
    Prasad R, Shah AH, Sanwal H, Kapoor K.
    Biochem Biophys Res Commun; 2012 Jan 06; 417(1):508-13. PubMed ID: 22166216
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  • 39. Single amino acid exchanges in FAD-binding domains of squalene epoxidase of Saccharomyces cerevisiae lead to either loss of functionality or terbinafine sensitivity.
    Ruckenstuhl C, Eidenberger A, Lang S, Turnowsky F.
    Biochem Soc Trans; 2005 Nov 06; 33(Pt 5):1197-201. PubMed ID: 16246080
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  • 40. Serum repressing efflux pump CDR1 in Candida albicans.
    Yang YL, Lin YH, Tsao MY, Chen CG, Shih HI, Fan JC, Wang JS, Lo HJ.
    BMC Mol Biol; 2006 Jul 13; 7():22. PubMed ID: 16839415
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