Delineation of the Direct Contribution of Candida auris ERG11 Mutations to Clinical Triazole Resistance

被引:35
作者
Rybak, Jeffrey M. [1 ]
Sharma, Cheshta [2 ]
Doorley, Laura A. [1 ]
Barker, Katherine S. [1 ]
Palmer, Glen E. [2 ]
Rogers, P. David [1 ]
机构
[1] St Jude Childrens Res Hosp, Dept Pharm & Pharmaceut Sci, 332 N Lauderdale St, Memphis, TN 38105 USA
[2] Univ Tennessee, Coll Pharm, Dept Clin Pharm & Translat Sci, Memphis, TN USA
来源
MICROBIOLOGY SPECTRUM | 2021年 / 9卷 / 03期
关键词
Candida; triazole; resistance; ERG11; CRISPR; AZOLE RESISTANCE; UP-REGULATION;
D O I
10.1128/Spectrum.01585-21
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Resistance to fluconazole is one of clinical characteristics most frequently challenging the treatment of invasive Candida auris infections, and is observed among >90% of all characterized clinical isolates. In this work, the native C. auris ERG11 allele in a previously characterized fluconazole-susceptible clinical isolate was replaced with the ERG11 alleles from three highly fluconazole-resistant clinical isolates (MIC >= 256 mg/L), encoding the amino acid substitutions VF125AL, Y132F, and K143R, using Cas9-ribonucleoprotein (RNP) mediated transformation system. Reciprocally, the ERG11(WT) allele from the same fluconazole-susceptible clinical isolate, lacking any resistance-associated mutation, was introduced into a previously characterized fluconazole-resistant clinical isolate, replacing the native ERG11(K143R) allele, using the same methods. The resulting collection of strains was subjected to comprehensive triazole susceptibility testing, and the direct impact each of these clinically-derived ERG11 mutations on triazole MIC was determined. Introduction of each of the three mutant ERG11 alleles was observed to increase fluconazole and voriconazole MIC by 8- to 16-fold. The MIC for the other clinically available triazoles were not significantly impacted by any ERG11 mutation. In the fluconazole-resistant clinical isolate background, correction of the K143R encoding mutation led to a similar 16-fold decrease in fluconazole MIC, and 8-fold decrease in voriconazole MIC, while the MIC of other triazoles were minimally changed. Taken together, these findings demonstrate that mutations in C. auris ERG11 significantly contribute to fluconazole and voriconazole resistance, but alone cannot explain the substantially elevated MIC observed among clinical isolates of C. auris. IMPORTANCE Candida auris is an emerging multidrug-resistant and health care-associated pathogen of urgent clinical concern. The triazoles are the most widely prescribed antifungal agents worldwide and are commonly utilized for the treatment of invasive Candida infections. Greater than 90% of all C. auris clinical isolates are observed to be resistant to fluconazole, and nearly all fluconazole-resistant isolates of C. auris are found to have one of three mutations (encoding VF125AL, Y132F, or K143R) in the gene encoding the target of the triazoles, ERG11. However, the direct contribution of these mutations in ERG11 to fluconazole resistance and the impact these mutations may have the susceptibility of the other triazoles remains unknown. The present study seeks to address this knowledge gap and potentially inform the future application the triazole antifungals for the treatment of infections caused by C. auris.
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页数:9
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共 22 条
  • [1] Centers for Disease Control and Prevention, 2020, ANT SUSC TEST INT
  • [2] Centers for Disease Control and Prevention, 2020, TRACK CAND AUR
  • [3] Tracing the Evolutionary History and Global Expansion of Candida auris Using Population Genomic Analyses
    Chow, Nancy A.
    Munoz, Jose F.
    Gade, Lalitha
    Berkow, Elizabeth L.
    Li, Xiao
    Welsh, Rory M.
    Forsberg, Kaitlin
    Lockhart, Shawn R.
    Adam, Rodney
    Alanio, Alexandre
    Alastruey-Izquierdo, Ana
    Althawadi, Sahar
    Arauz, Ana Belen
    Ben-Ami, Ronen
    Bharat, Amrita
    Calvo, Belinda
    Desnos-Ollivier, Marie
    Escandon, Patricia
    Gardam, Dianne
    Gunturu, Revathi
    Heath, Christopher H.
    Kurzai, Oliver
    Martin, Ronny
    Litvintseva, Anastasia P.
    Cuomo, Christina A.
    [J]. MBIO, 2020, 11 (02):
  • [4] A gain-of-function mutation in the transcription factor Upc2p causes Upregulation of ergosterol biosynthesis genes and increased Fluconazole resistance in a clinical Candida albicans isolate
    Dunkel, Nico
    Liu, Teresa T.
    Barker, Katherine S.
    Homayouni, Ramin
    Morschhaeuser, Joachim
    Rogers, P. David
    [J]. EUKARYOTIC CELL, 2008, 7 (07) : 1180 - 1190
  • [5] Contribution of Clinically Derived Mutations in ERG11 to Azole Resistance in Candida albicans
    Flowers, Stephanie A.
    Colon, Brendan
    Whaley, Sarah G.
    Schuler, Mary A.
    Rogers, P. David
    [J]. ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2015, 59 (01) : 450 - 460
  • [6] Gain-of-Function Mutations in UPC2 Are a Frequent Cause of ERG11 Upregulation in Azole-Resistant Clinical Isolates of Candida albicans
    Flowers, Stephanie A.
    Barker, Katherine S.
    Berkow, Elizabeth L.
    Toner, Geoffrey
    Chadwick, Sean G.
    Gygax, Scott E.
    Morschhaeuser, Joachim
    Rogers, P. David
    [J]. EUKARYOTIC CELL, 2012, 11 (10) : 1289 - 1299
  • [7] Healey KR, 2018, ANTIMICROB AGENTS CH, V62, DOI [10.1128/AAC.01427-18, 10.1128/aac.01427-18]
  • [8] MODE OF ACTION AND RESISTANCE TO AZOLE ANTIFUNGALS ASSOCIATED WITH THE FORMATION OF 14-ALPHA-METHYLERGOSTA-8,24(28)-DIEN-3-BETA,6-ALPHA-DIOL
    KELLY, SL
    LAMB, DC
    CORRAN, AJ
    BALDWIN, BC
    KELLY, DE
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1995, 207 (03) : 910 - 915
  • [9] Kwon YJ, 2019, J CLIN MICROBIOL, V57, DOI [10.1128/jcm.01624-18, 10.1128/JCM.01624-18]
  • [10] Aspergillus fumigatus harbouring the sole Y121F mutation shows decreased susceptibility to voriconazole but maintained susceptibility to itraconazole and posaconazole
    Lescar, J.
    Meyer, I.
    Akshita, K.
    Srinivasaraghavan, K.
    Verma, C.
    Palous, M.
    Mazier, D.
    Datry, A.
    Fekkar, A.
    [J]. JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2014, 69 (12) : 3244 - 3247