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发现丙酮酸激酶是新型杀菌剂候选物 3-(4-甲基-1,2,3-噻二唑基)-6-三氯甲基-[1,2,4]-三唑并-[3,4-b][1,3,4]-噻二唑的新靶标。

Discovery of Pyruvate Kinase as a Novel Target of New Fungicide Candidate 3-(4-Methyl-1,2,3-thiadiazolyl)-6-trichloromethyl-[1,2,4]-triazolo-[3,4- b][1,3,4]-thiadizole.

机构信息

State Key Laboratory of Elemento-Organic Chemistry, College of Chemistry , Nankai University , Number 94, Weijin Road , Nankai District, Tianjin 300071 , PR China.

Tianjin No. 1 High School , Number 117, Xian Road , Heping District, Tianjin 300051 , PR China.

出版信息

J Agric Food Chem. 2018 Nov 21;66(46):12439-12452. doi: 10.1021/acs.jafc.8b03797. Epub 2018 Oct 30.

Abstract

Target identification is an essential basis for novel-pesticide development in new molecular design and lead optimization. 3-(4-Methyl-1,2,3-thiadiazolyl)-6-trichloromethyl[1,2,4]triazolo[3,4- b][1,3,4]thiadizole (YZK-C22) is a novel fungicide candidate with specific antifungal activity. We investigated its mode of action, and our studies indicated that YZK-C22 showed no cross resistance against Saccharomyces cerevisiae mutants with classic fungicide targets. Mec1 and Rad53 are two kinases that respond to DNA-replication damage, and the efficacy test showed that YZK-C22 could not perform its fungicidal activity by inhibiting DNA repair. Target screening by drug-affinity-responsive target stability (DARTS) showed that pyruvate kinase (PK), a key enzyme in the glycolytic pathway, was the potent new fungicidal target of YZK-C22. Fifty-eight differentially expressed proteins (DEPs) primarily involved in the metabolic process were identified by isobaric tags for relative and absolute quantification analysis (iTRAQ) in S. cerevisiae, and protein expression in the citrate cycle decreased with treatment of 5 mg/L YZK-C22, which was consistent with the results of DARTS. Molecular-docking analysis further validated that YZK-C22 could dock into the active center of PK instead of phosphoenolpyruvate. The enzyme activity of PK from S. cerevisiae was competitively inhibited with a K of 3.33 ± 0.28 μmol/L, and the cell-growth inhibition of S. cerevisiae was released by supplementation with pyruvic acid, whereas the growth of S. cerevisiae was not recovered by adding PK's substrate (phosphoenolpyruvate) or allosteric regulator (fructose-1,6-bisphosphate). The present studies uncovered and validated the primary target of the new, potent fungicidal candidate YZK-C22; our results provide a successful, valuable, and applicable case of target discovery and identification for novel-fungicide development.

摘要

靶标确证是新分子设计和先导优化中新型农药开发的基础。3-(4-甲基-1,2,3-噻二唑基)-6-三氯甲基[1,2,4]三唑并[3,4-b][1,3,4]噻二唑(YZK-C22)是一种具有独特抗真菌活性的新型杀菌剂候选物。我们研究了其作用模式,研究表明,YZK-C22 对具有经典杀菌剂靶标的酿酒酵母突变体没有交叉抗性。Mec1 和 Rad53 是两种对 DNA 复制损伤做出响应的激酶,功效测试表明,YZK-C22 不能通过抑制 DNA 修复来发挥其杀菌活性。药物亲和反应靶标稳定性(DARTS)的靶标筛选表明,丙酮酸激酶(PK),糖酵解途径中的关键酶,是 YZK-C22 的新的强效抗真菌靶标。通过相对和绝对定量同位素标记(iTRAQ)在酿酒酵母中鉴定到 58 个差异表达蛋白(DEPs),主要参与代谢过程,并且随着 5mg/L YZK-C22 处理,柠檬酸循环中的蛋白表达下降,这与 DARTS 的结果一致。分子对接分析进一步验证了 YZK-C22 可以进入 PK 的活性中心而不是磷酸烯醇丙酮酸。来自酿酒酵母的 PK 的酶活性受到 3.33±0.28μmol/L 的竞争抑制,并且添加丙酮酸可释放酿酒酵母的细胞生长抑制,而添加 PK 的底物(磷酸烯醇丙酮酸)或别构调节剂(果糖-1,6-二磷酸)并不能恢复酿酒酵母的生长。本研究揭示并验证了新型强效杀菌剂候选物 YZK-C22 的主要靶标;我们的结果为新型杀菌剂开发的靶标发现和鉴定提供了一个成功、有价值和适用的案例。

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