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乙氧磺隆衍生物作为新型乙酰羟酸合酶抑制剂的化学制备、生物评价及 3D-QSAR 研究

Chemical preparation, biological evaluation and 3D-QSAR of ethoxysulfuron derivatives as novel antifungal agents targeting acetohydroxyacid synthase.

机构信息

State-Key Laboratory and Research Institute of Elemento-Organic Chemistry, College of Chemistry, Nankai University, Tianjin 300071, China.

Key Laboratory of Molecular Microbiology and Technology, Ministry of Education, College of Life Sciences, Nankai University, Tianjin, 300071, China.

出版信息

Eur J Med Chem. 2019 Jan 15;162:348-363. doi: 10.1016/j.ejmech.2018.11.005. Epub 2018 Nov 12.

Abstract

Accetohydroxyacid synthase (AHAS) is the first enzyme involved in the biosynthetic pathway of branched-chain amino acids. Earlier gene mutation of Candida albicans in a mouse model suggested that this enzyme is a promising target of antifungals. Recent studies have demonstrated that some commercial AHAS-inhibiting sulfonylurea herbicides exerted desirable antifungal activity. In this study, we have designed and synthesized 68 novel ethoxysulfulron (ES) derivatives and evaluated their inhibition constants (K) against C. albicans AHAS and cell based minimum inhibitory concentration (MIC) values. The target compounds 5-1, 5-10, 5-22, 5-31 and 5-37 displayed stronger AHAS inhibitions than ES did. Compound 5-1 had the best K of 6.7 nM against fungal AHAS and MIC values of 2.5 mg/L against Candida albicans and Candica parapsilosis after 72 h. A suitable nematode model was established here and the antifungal activity of 5-1 was further evaluated in vivo. A possible binding mode was simulated via molecular docking and a comparative field analysis (CoMFA) model was constructed to understand the structure-activity relationship. The current study has indicated that some ES derivatives should be considered as promising hits to develop antifungal drugs with novel biological target.

摘要

乙酰羟酸合酶(AHAS)是支链氨基酸生物合成途径中涉及的第一个酶。先前在小鼠模型中对白色念珠菌的基因突变表明,该酶是抗真菌药物的一个有前途的靶标。最近的研究表明,一些商业 AHAS 抑制磺酰脲类除草剂具有理想的抗真菌活性。在这项研究中,我们设计和合成了 68 种新型乙氧基磺隆(ES)衍生物,并评估了它们对白色念珠菌 AHAS 的抑制常数(K)和基于细胞的最小抑菌浓度(MIC)值。目标化合物 5-1、5-10、5-22、5-31 和 5-37 对 AHAS 的抑制作用强于 ES。化合物 5-1 对真菌 AHAS 的 K 值最低,为 6.7 nM,对白色念珠菌和近平滑念珠菌的 MIC 值在 72 h 后分别为 2.5 mg/L。在这里建立了一个合适的线虫模型,并进一步在体内评估了 5-1 的抗真菌活性。通过分子对接模拟了一个可能的结合模式,并构建了一个比较场分析(CoMFA)模型来了解结构-活性关系。本研究表明,一些 ES 衍生物可被视为开发具有新型生物靶标的抗真菌药物的有前途的候选药物。

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