Inactivating the mannose-ethanolamine phosphotransferase Gpi7 confers caspofungin resistance in the human fungal pathogen Candida albicans

Q1 Immunology and Microbiology
Guisheng Zeng , Xiaoli Xu , Jiaxin Gao , Alessandra da Silva Dantas , Neil A.R. Gow , Yue Wang
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引用次数: 3

Abstract

Understanding the molecular mechanisms governing antifungal resistance is crucial for identifying new cellular targets for developing new antifungal therapeutics. In this study, we performed a transposon-mediated genome-wide genetic screen in haploid Candida albicans to identify mutants resistant to caspofungin, the first member of the echinocandin class of antifungal drugs. A mutant exhibiting the highest resistance possessed a transposon insertion that inactivates GPI7, a gene encoding the mannose-ethanolamine phosphotransferase. Deleting GPI7 in diploid C. albicans caused similar caspofungin resistance. gpi7Δ/Δ cells showed significantly elevated cell wall chitin content and enhanced phosphorylation of Mkc1, a core component of the PKC-MAPK cell-wall integrity pathway. Deleting MKC1 suppressed the chitin elevation and caspofungin resistance of gpi7Δ/Δ cells, but overexpressing the dominant inactive form of RHO1, an upstream activator of PKC-MAPK signaling, did not. Transcriptome analysis uncovered 406 differentially expressed genes in gpi7Δ/Δ cells, many related to cell wall construction. Our results suggest that GPI7 deletion impairs cell wall integrity, which triggers the cell-wall salvage mechanism via the PKC-MAPK pathway independently of Rho1, resulting in the compensatory chitin synthesis to confer caspofungin resistance.

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甘露糖-乙醇胺磷酸转移酶Gpi7失活使人类真菌病原体白色念珠菌对caspofunins产生耐药性
了解控制抗真菌耐药性的分子机制对于确定新的细胞靶点以开发新的抗真菌疗法至关重要。在这项研究中,我们在单倍体白色念珠菌中进行了转座子介导的全基因组遗传筛选,以鉴定对刺白菌素耐药的突变体,刺白菌素类抗真菌药物的第一个成员。表现出最高抗性的突变体具有转座子插入,使编码甘露糖-乙醇胺磷酸转移酶的基因GPI7失活。在二倍体白色念珠菌中删除GPI7引起了类似的caspofunins抗性。gpi7Δ/Δ细胞显示细胞壁几质含量显著升高,Mkc1磷酸化增强,Mkc1是PKC-MAPK细胞壁完整性途径的核心成分。删除MKC1抑制gpi7Δ/Δ细胞的几丁质升高和caspofungin抗性,但过表达PKC-MAPK信号的上游激活因子RHO1的显性失活形式则没有作用。转录组分析在gpi7Δ/Δ细胞中发现了406个差异表达基因,其中许多与细胞壁构建有关。我们的研究结果表明,GPI7缺失会损害细胞壁的完整性,从而通过PKC-MAPK途径独立于Rho1触发细胞壁挽救机制,导致代偿性几丁质合成,从而赋予caspofungin抗性。
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
Cell Surface
Cell Surface Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
6.10
自引率
0.00%
发文量
18
审稿时长
49 days
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