Quantitative proteomics revealed the transition of ergosterol biosynthesis and drug transporters processes during the development of fungal fluconazole resistance

IF 2.6 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xinying Sui , Xinyu Cheng , Zhaodi Li , Yonghong Wang , Zhenpeng Zhang , Ruyue Yan , Lei Chang , Yanchang Li , Ping Xu , Changzhu Duan
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引用次数: 0

Abstract

Fungal infections and antifungal resistance are the increasing global public health concerns. Mechanisms of fungal resistance include alterations in drug-target interactions, detoxification by high expression of drug efflux transporters, and permeability barriers associated with biofilms. However, the systematic panorama and dynamic changes of the relevant biological processes of fungal drug resistance acquisition remain limited. In this study, we developed a yeast model of resistance to prolonged fluconazole treatment and utilized the isobaric labels TMT (tandem mass tag)-based quantitative proteomics to analyze the proteome composition and changes in native, short-time fluconazole stimulated and drug-resistant strains. The proteome exhibited significant dynamic range at the beginning of treatment but returned to normal condition upon acquisition drug resistance. The sterol pathway responded strongly under a short time of fluconazole treatment, with increased transcript levels of most enzymes facilitating greater protein expression. With the drug resistance acquisition, the sterol pathway returned to normal state, while the expression of efflux pump proteins increased obviously on the transcription level. Finally, multiple efflux pump proteins showed high expression in drug-resistant strain. Thus, families of sterol pathway and efflux pump proteins, which are closely associated with drug resistance mechanisms, may play different roles at different nodes in the process of drug resistance acquisition. Our findings uncover the relatively important role of efflux pump proteins in the acquisition of fluconazole resistance and highlight its potential as the vital antifungal targets.

定量蛋白质组学揭示了真菌氟康唑耐药性发展过程中麦角甾醇生物合成和药物转运过程的转变
真菌感染和抗真菌耐药性是全球公共卫生日益关注的问题。真菌耐药性的机制包括药物-靶标相互作用的改变、药物外排转运蛋白的高表达解毒以及与生物膜相关的渗透屏障。然而,真菌耐药性获取的相关生物学过程的系统全景和动态变化仍然有限。在本研究中,我们开发了一个酵母对长期氟康唑治疗的耐药性模型,并利用基于同量序标记TMT(串联质谱标签)的定量蛋白质组学来分析天然、短期氟康唑刺激和耐药菌株的蛋白质组组成和变化。蛋白质组在治疗开始时表现出显著的动态范围,但在获得耐药性后恢复到正常状态。在短时间的氟康唑治疗下,甾醇途径反应强烈,大多数酶的转录水平增加促进了更大的蛋白质表达。随着耐药性的获得,甾醇途径恢复正常,而外排泵蛋白在转录水平上的表达明显增加。最后,多重外排泵蛋白在耐药菌株中显示出高表达。因此,与耐药性机制密切相关的甾醇途径和外排泵蛋白家族可能在耐药性获取过程中的不同节点发挥不同的作用。我们的发现揭示了外排泵蛋白在获得氟康唑耐药性中相对重要的作用,并突出了其作为重要抗真菌靶标的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.20
自引率
2.10%
发文量
63
审稿时长
44 days
期刊介绍: BBA Gene Regulatory Mechanisms includes reports that describe novel insights into mechanisms of transcriptional, post-transcriptional and translational gene regulation. Special emphasis is placed on papers that identify epigenetic mechanisms of gene regulation, including chromatin, modification, and remodeling. This section also encompasses mechanistic studies of regulatory proteins and protein complexes; regulatory or mechanistic aspects of RNA processing; regulation of expression by small RNAs; genomic analysis of gene expression patterns; and modeling of gene regulatory pathways. Papers describing gene promoters, enhancers, silencers or other regulatory DNA regions must incorporate significant functions studies.
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