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首页> 外文期刊>Antimicrobial agents and chemotherapy. >Contribution of Clinically Derived Mutations in the Gene Encoding the Zinc Cluster Transcription Factor Mrr2 to Fluconazole Antifungal Resistance and CDR1 Expression in Candida albicans
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Contribution of Clinically Derived Mutations in the Gene Encoding the Zinc Cluster Transcription Factor Mrr2 to Fluconazole Antifungal Resistance and CDR1 Expression in Candida albicans

机译:临床衍生突变在编码锌簇转录因子MRR2至氟康唑抗真菌和CDR1在念珠菌抗真菌抗性和CDR1表达中的贡献

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Mutations in genes encoding zinc cluster transcription factors (ZCFs) such as TAC1, MRR1, and UPC2 play a key role in Candida albicans azole antifungal resistance. Artificial activation of the ZCF Mrr2 has shown increased expression of the gene encoding the Cdr1 efflux pump and resistance to fluconazole. Amino acid substitutions in Mrr2 have recently been reported to contribute to fluconazole resistance in clinical isolates. In the present study, 57 C. albicans clinical isolates with elevated fluconazole MICs were examined for mutations in MRR2 and expression of CDR1. Mutations in MRR2 resulting in 15 amino acid substitutions were uniquely identified among resistant isolates, including 4 substitutions (S466L, A468G, S469T, T470N) previously reported to reduce fluconazole susceptibility. Three additional, novel amino acid substitutions (R45Q, A459T, V486M) were also discovered in fluconazole-resistant isolates. When introduced into a fluconazole-susceptible background, no change in fluconazole MIC or CDR1 expression was observed for any of the mutations found in this collection. However, introduction of an allele leading to artificial activation of Mrr2 increased resistance to fluconazole as well as CDR1 expression. Moreover, Mrr2 amino acid changes reported previously to have the strongest effect on fluconazole susceptibility and CDR1 expression also exhibited no differences in fluconazole susceptibility or CDR1 expression relative to the parent strain. While all known fluconazole resistance mechanisms are represented within this collection of clinical isolates and contribute to fluconazole resistance to different extents, mutations in MRR2 do not appear to alter CDR1 expression or contribute to resistance in any of these isolates.
机译:编码锌簇转录因子(ZCF)如TAC1,MRR1和UPC2的基因中的突变在念珠菌alzole抗真菌抗性中发挥着关键作用。 ZCF MRR2的人工激活显示了编码CDR1流出泵的基因的表达增加,以及对氟康唑的抗性。最近据报道MRR2中MRR2中的氨基酸取代有助于临床分离株中的氟康唑抗性。在本研究中,在MRR2中的突变中检查了57℃的敏孔患者临床分离物,用于MRR2中的突变和CDR1的表达。 MRR2中的突变导致15个氨基酸取代的抗性分离株,包括先前据报道的4个取代(S466L,A468g,S469T,T470N)以降低氟康唑易感性。还发现了三种另外的新型氨基酸取代(R45Q,A459T,V486M),耐氟康唑抗性分离物。当引入氟康唑易感背景中时,对于该系列中发现的任何突变,没有观察到氟康唑MIC或CDR1表达的变化。然而,引入导致MRR2人工活化的等位基因增加对氟康唑以及CDR1表达的增加。此外,先前对氟康唑易感性和CDR1表达具有最强的效果的MRR2氨基酸变化也表现出相对于亲本菌株的氟康唑易感性或CDR1表达的差异。虽然所有已知的氟康唑抗性机制在该临床分离物的收集中表示并有助于氟康唑抗性对不同的延伸率,但MRR2中的突变似乎不会改变CDR1表达或有助于任何这些分离物中的任何抗性。

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