Genomic and transcriptome identification of fluconazole-resistant genes for Trichosporon asahii

Author:

Xia Zhikuan12,Yu Haiying3,Wang Congmin2,Ding Xiao2,Zhang Dequan12,Tan Xinyu3,Chen Jianghan4,Hu Songnian3,Yang Rongya2

Affiliation:

1. The Third Military Medical University (Army Medical University), Chongqing 400038, China

2. Department of Dermatology, The Seventh Medical Center of PLA General Hospital (PLA Army General Hospital), Beijing 100700, China

3. The CAS Key Laboratory of Genome Sciences and Information, Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing 100101, China

4. Department of Dermatology, Changzheng Hospital, The Second Military Medical University, Shanghai 200003, China

Abstract

Abstract Trichosporon asahii infection is difficult to control clinically. This study identified a case with over 15 years of T. asahii infection-related systemic dissemination disease and conducted genome and transcriptome sequencing to identify fluconazole-resistant genes in fluconazole-resistant versus susceptible strains isolated from this patient's facial skin lesions. The data revealed mutations of the ergosterol biosynthetic pathway-related genes in the T. asahii genome of the fluconazole-resistant strain, that is, there were 36 novel mutations of the ERG11 gene, three point mutations (V458L, D457V, and D334S) in the ERG3, and a missense mutation (E349D) in ERG5 in the fluconazole-resistant strain of the T. asahii genome. To ensure that ERG11 is responsible for the fluconazole resistance, we thus simultaneously cultured the strains in vitro and cloned the ERG11 CDS sequences of both fluconazole-susceptible and -resistant strains into the Saccharomyces cerevisiae. These experiments confirmed that these mutations of ERG11 gene affected fluconazole resistance (> 64 μg/ml vs. <8 μg/ml of the MIC value between fluconazole-resistant and -susceptible strains) in Saccharomyces cerevisiae. In addition, expression of ergosterol biosynthesis pathway genes and drug transporter was upregulated in the fluconazole-resistant strain of T. asahii. Collectively, the fluconazole resistance in this female patient was associated with mutations of ERG11, ERG3, and ERG5 and the differential expression of drug transporter and fatty acid metabolic genes.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Infectious Diseases,General Medicine

Reference24 articles.

1. Molecular bases of antifungal resistance in filamentous fungi;Sharma;Int J Antimicrob Agents,2017

2. Interaction of azole antifungal agents with cytochrome P-45014DM purified from Saccharomyces cerevisiae microsomes;Yoshida;Biochem Pharmacol,1987

3. A new amino acid substitution at G150S in lanosterol 14-α demethylase (Erg11 protein) in multi-azole-resistant Trichosporon asahii;Kushima H;Med Mycol J,2017

4. Amino acid substitution in Cryptococcus neoformans lanosterol 14-alpha-demethylase involved in fluconazole resistance in clinical isolates;Bosco-Borgeat;Rev Argent Microbiol,2016

5. The global problem of antifungal resistance: prevalence, mechanisms, and management;Perlin;Lancet Infect Dis,2017

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