Transcription factor Hap2p regulates antioxidant stress responses to maintain miconazole resistance in Candida albicans.

IF 4.4 2区 生物学 Q1 MYCOLOGY
Mycology Pub Date : 2025-01-06 eCollection Date: 2025-01-01 DOI:10.1080/21501203.2024.2432424
Yulin Qin, Quanzhen Lv, Hongtao Xu, Yongbing Cao, Bing Han
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Abstract

Acquired resistance in Candida albicans brings about a serious challenge to the clinical application of azoles, so it is urgent to elucidate the mechanisms of azole resistance to improve the therapeutic efficiency. In the aim of searching for the potential targets mediating fluconazole resistance, we screened a mutant library of 48 transcription factor deletion Candida albicans strains. The screening results showed that hap2Δ/Δ mutants were significantly more susceptible to azoles, especially to miconazole (MCZ). Under MCZ treatment, the intracellular reactive oxygen species (ROS) were significantly higher in hap2Δ/Δ mutants compared to the control strain SN250. The addition of antioxidants reversed the MCZ-sensitive phenotype caused by the deletion of HAP2. Consistently, the expression of antioxidases responsible for scavenging ROS was shown to decrease in hap2Δ/Δ mutants, suggesting that the transcription factor Hap2p is involved in the regulation of oxidative stress responses in C. albicans. In addition, HAP2 deficiency also resulted in impaired mitochondrial function and affected cellular energy supply, which may be related to the iron deficiency regulated by HAP complex. HAP2 disruption also decreased efflux-mediated resistance of C. albicans, as demonstrated by a significant decrease in Cdr1p expression and a slight decrease in Mdr1p expression in hap2Δ/Δ strains under the action of MCZ. The above results indicate that the transcription factor Hap2p was required for the resistance of C. albicans to azoles, which could provide a new strategy to solve the clinical azoles resistance.

转录因子Hap2p调节抗氧化应激反应以维持白色念珠菌对咪康唑的抗性。
白色念珠菌的获得性耐药给唑类药物的临床应用带来了严峻的挑战,因此迫切需要阐明其耐药机制以提高治疗效果。为了寻找介导氟康唑耐药的潜在靶点,我们筛选了48株转录因子缺失的白色念珠菌突变文库。筛选结果显示,hap2Δ/Δ突变体对唑类药物,尤其是咪康唑(miconazole, MCZ)的敏感性显著提高。在MCZ处理下,hap2Δ/Δ突变体的细胞内活性氧(ROS)显著高于对照菌株SN250。抗氧化剂的加入逆转了HAP2缺失引起的mcz敏感表型。与此一致的是,在hap2Δ/Δ突变体中,负责清除ROS的抗氧化酶的表达减少,这表明转录因子Hap2p参与了白色念珠菌氧化应激反应的调节。此外,HAP2缺乏还会导致线粒体功能受损,影响细胞能量供应,这可能与HAP复合物调节的缺铁有关。HAP2的破坏也降低了白色念珠菌外排介导的耐药性,在MCZ的作用下,hap2Δ/Δ菌株的Cdr1p表达显著下降,Mdr1p表达略有下降。上述结果表明,白色念珠菌对唑类药物的耐药需要转录因子Hap2p的参与,为解决临床的唑类药物耐药提供了新的策略。
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
Mycology
Mycology Medicine-Infectious Diseases
CiteScore
9.10
自引率
0.00%
发文量
18
审稿时长
13 weeks
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