Sterol uptake and sterol biosynthesis act coordinately to mediate antifungal resistance in Candida glabrata under azole and hypoxic stress

被引:44
|
作者
Li, Qingdi Quentin [1 ]
Tsai, Huei-Fung [1 ]
Mandal, Ajeet [2 ]
Walker, Bryan A. [1 ]
Noble, Jason A. [1 ]
Fukuda, Yuichi [1 ]
Bennett, John E. [1 ]
机构
[1] NIAID, Clin Mycol Sect, Lab Clin Infect Dis, 9000 Rockville Pike, Bethesda, MD 20892 USA
[2] Natl Inst Dent & Craniofacial Res, Mol & Cellular Biochem Sect, NIH, Bethesda, MD 20892 USA
基金
美国国家卫生研究院;
关键词
Candida glabrata; azole resistance; fluconazole; voriconazole; ergosterol synthesis; sterol uptake; SACCHAROMYCES-CEREVISIAE; ALBICANS; CYTOSCAPE; GENES; NETWORKS; DRUGS; CELLS; UPC2P;
D O I
10.3892/mmr.2018.8716
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Pathogenic fungi, including Candida glabrata, develop strategies to grow and survive both in vitro and in vivo under azole stress. However, the mechanisms by which yeast cells counteract the inhibitory effects of azoles are not completely understood. In the current study, it was demonstrated that the expression of the ergosterol biosynthetic genes ERG2, ERG3, ERG4, ERG10, and ERG11 was significantly upregulated in C. glabrata following fluconazole treatment. Inhibiting ergosterol biosynthesis using fluconazole also increased the expression of the sterol influx transporter AUS1 and the sterol metabolism regulators SUT1 and UPC2 in fungal cells. The microarray study quantified 35 genes with elevated mRNA levels, including AUS1, TIR3, UPC2, and 8 ERG genes, in a C. glabrata mutant strain lacking ERG1, indicating that sterol importing activity is increased to compensate for defective sterol biosynthesis in cells. Bioinformatic analyses further revealed that those differentially expressed genes were involved in multiple cellular processes and biological functions, such as sterol biosynthesis, lipid localization, and sterol transport. Finally, to assess whether sterol uptake affects yeast susceptibility to azoles, we generated a C. glabrata aus1 mutant strain. It was shown that loss of Aus1p in C. glabrata sensitized the pathogen to azoles and enhanced the efficacy of drug exposure under low oxygen tension. In contrast, the presence of exogenous cholesterol or ergosterol in medium rendered the C. glabrata AUS1 wild-type strain highly resistant to fluconazole and voriconazole, suggesting that the sterol importing mechanism is augmented when ergosterol biosynthesis is suppressed in the cell, thus allowing C. glabrata to survive under azole pressure. On the basis of these results, it was concluded that sterol uptake and sterol biosynthesis may act coordinately and collaboratively to sustain growth and to mediate antifungal resistance in C. glabrata through dynamic gene expression in response to azole stress and environmental challenges.
引用
收藏
页码:6585 / 6597
页数:13
相关论文
共 5 条
  • [1] Multidrug Transporters and Alterations in Sterol Biosynthesis Contribute to Azole Antifungal Resistance in Candida parapsilosis
    Berkow, Elizabeth L.
    Manigaba, Kayihura
    Parker, Josie E.
    Barker, Katherine S.
    Kelly, Stephen L.
    Rogers, P. David
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2015, 59 (10) : 5942 - 5950
  • [2] Exhibition of antifungal resistance by sterol-auxotrophic strains of Candida glabrata with intact virulence
    Nagi, Minoru
    Tanabe, Koichi
    Tanaka, Kazuko
    Ueno, Keigo
    Nakayama, Hironobu
    Ishikawa, Jun
    Abe, Masahiro
    Yamagoe, Satoshi
    Umeyama, Takashi
    Nakamura, Shigeki
    Sugai, Motoyuki
    Hazen, Kevin C.
    Miyazaki, Yoshitsugu
    JAC-ANTIMICROBIAL RESISTANCE, 2021, 4 (01):
  • [3] A Novel Sterol-Signaling Pathway Governs Azole Antifungal Drug Resistance and Hypoxic Gene Repression in Saccharomyces cerevisiae
    Serratore, Nina D.
    Baker, Kortany M.
    Macadlo, Lauren A.
    Gress, Abigail R.
    Powers, Brendan L.
    Atallah, Nadia
    Westerhouse, Kirsten M.
    Hall, Mark C.
    Weake, Vikki M.
    Briggs, Scott D.
    GENETICS, 2018, 208 (03) : 1037 - 1055
  • [4] Candida glabrata maintains two HAP1 ohnologs, HAP1A and HAP1B, for distinct roles in ergosterol gene regulation to mediate sterol homeostasis under azole and hypoxic conditions
    Saha, Debasmita
    Gregor, Justin B.
    Hoda, Smriti
    Eastman, Katharine E.
    Gutierrez-Schultz, Victor A.
    Navarrete, Mindy
    Wisecaver, Jennifer H.
    Briggs, Scott D.
    MSPHERE, 2024, 9 (11)
  • [5] Facultative Sterol Uptake in an Ergosterol-Deficient Clinical Isolate of Candida glabrata Harboring a Missense Mutation in ERG11 and Exhibiting Cross-Resistance to Azoles and Amphotericin B
    Hull, Claire M.
    Parker, Josie E.
    Bader, Oliver
    Weig, Michael
    Gross, Uwe
    Warrilow, Andrew G. S.
    Kelly, Diane E.
    Kelly, Steven L.
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2012, 56 (08) : 4223 - 4232