解读耳念珠菌分支V对氟康唑的耐药性:外排泵基因表达和麦角甾醇途径突变的作用。

IF 3.6 3区 生物学 Q2 MYCOLOGY
Robab Ebrahimi Barough, Mahdi Abastabar, Maryam Moazeni, Javad Javidnia, Reza Valadan, Azadeh Bandegani, Mohsen Nosratabadi, Iman Haghani, Bram Spruijtenburg, Darius Armstrong-James, Hamid Badali
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引用次数: 0

摘要

耳念珠菌是一种新兴的多重耐药酵母病原体,对全球健康构成严重威胁。特别是,氟康唑耐药性在耳念珠菌中很常见,这对治疗侵袭性感染提出了挑战。了解金黄色葡萄球菌耐氟康唑的遗传和分子机制对于制定有效的控制策略至关重要。本研究旨在探讨耳念珠菌进化枝V株氟康唑耐药的遗传和分子基础。此外,我们还检测了Clade v菌株中麦角甾醇生物合成基因和外排泵基因在氟康唑耐药和敏感株中的突变,对2株auris C., 1株氟康唑耐药和1株氟康唑敏感的外排泵基因(CDR1, CDR2, MDR1, MDR2)的表达进行了qPCR分析。蛋白质结构建模也用于评估麦角甾醇生物合成基因(ERG11)突变对抗真菌药物可及性的影响。qPCR分析显示,外排泵基因CDR1、CDR2和MDR1在耐药菌株和敏感菌株之间的表达水平无显著差异。蛋白结构模型显示ERG11中的Y132F突变可能改变了氟康唑的结合和可及性。该研究为auris Clade v对氟康唑耐药的遗传和分子机制提供了深入的见解。研究结果强调了ERG11突变在介导这种新兴真菌病原体对氟康唑耐药中的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deciphering Fluconazole Resistance in Candida auris clade V: The Role of Efflux Pump Gene Expression and Ergosterol Pathway Mutations.

Candida auris is an emerging multidrug-resistant yeast pathogen that poses a serious global health threat. In particular, fluconazole resistance is common in C. auris, posing challenges for treating invasive infections. Understanding the genetic and molecular mechanisms underlying fluconazole resistance in C. auris is crucial for developing effective control strategies. The current study investigated the genetic and molecular basis of fluconazole resistance in C. auris clade V isolates. Furthermore, we examined mutations in ergosterol biosynthesis genes and expression of efflux pump genes in fluconazole-resistant versus susceptible in strains Clade V. Two C. auris isolates, one fluconazole-resistant, and one fluconazole-susceptible, were subjected to qPCR analysis of efflux pump gene (CDR1, CDR2, MDR1, MDR2) expression. Protein structure modeling was also performed to assess the impact of mutation in the ergosterol biosynthesis gene (ERG11) on antifungal drug accessibility. qPCR analysis revealed no significant difference in the expression levels of the efflux pump genes CDR1, CDR2, and MDR1 between the resistant and susceptible strains. Protein structure modeling indicated that the Y132F mutation in ERG11 likely altered fluconazole binding and accessibility. This study provides insights into the genetic and molecular mechanisms underpinning fluconazole resistance in C. auris Clade V. The findings highlight the critical roles of ERG11 mutation in mediating azole resistance in this emerging fungal pathogen.

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来源期刊
Mycopathologia
Mycopathologia 生物-真菌学
CiteScore
6.80
自引率
3.60%
发文量
76
审稿时长
3 months
期刊介绍: Mycopathologia is an official journal of the International Union of Microbiological Societies (IUMS). Mycopathologia was founded in 1938 with the mission to ‘diffuse the understanding of fungal diseases in man and animals among mycologists’. Many of the milestones discoveries in the field of medical mycology have been communicated through the pages of this journal. Mycopathologia covers a diverse, interdisciplinary range of topics that is unique in breadth and depth. The journal publishes peer-reviewed, original articles highlighting important developments concerning medically important fungi and fungal diseases. The journal highlights important developments in fungal systematics and taxonomy, laboratory diagnosis of fungal infections, antifungal drugs, clinical presentation and treatment, and epidemiology of fungal diseases globally. Timely opinion articles, mini-reviews, and other communications are usually invited at the discretion of the editorial board. Unique case reports highlighting unprecedented progress in the diagnosis and treatment of fungal infections, are published in every issue of the journal. MycopathologiaIMAGE is another regular feature for a brief clinical report of potential interest to a mixed audience of physicians and laboratory scientists. MycopathologiaGENOME is designed for the rapid publication of new genomes of human and animal pathogenic fungi using a checklist-based, standardized format.
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