He Haifeng, Xia Hongying, Xia Qin, Ren Yanliang, He Hongwu
Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, College of Chemistry, Central China Normal University, 152 Luoyu Road, Wuhan 430079, PR China; Jiangxi Key Laboratory of Organic Chemistry, Jiangxi Science and Technology Normal University, Fenglin Street, Nanchang, Jiangxi 330013, PR China.
Jiangxi Key Laboratory of Organic Chemistry, Jiangxi Science and Technology Normal University, Fenglin Street, Nanchang, Jiangxi 330013, PR China.
Bioorg Med Chem. 2017 Oct 15;25(20):5652-5661. doi: 10.1016/j.bmc.2017.08.038. Epub 2017 Aug 23.
By targeting the thiamin diphosphate (ThDP) binding site of Escherichia coli (E. coli) pyruvate dehydrogenase multienzyme complex E1 (PDHc E1), a series of novel 'open-chain' classes of ThDP analogs A, B, and C with N-acylhydrazone moieties was designed and synthesized to explore their activities against E. coli PHDc E1 in vitro and their inhibitory activity against microbial diseases were further evaluated in vivo. As a result, A1-23 exhibited moderate to potent inhibitory activities against E. coli PDHc E1 (IC=0.15-23.55μM). The potent inhibitors A13, A14, A15, C2, had strong inhibitory activities with IC values of 0.60, 0.15, 0.39 and 0.34μM against E. coli PDHc E1 and with good enzyme-selective inhibition between microorganisms and mammals. Especially, the most powerful inhibitor A14 could 99.37% control Xanthimonas oryzae pv. Oryzae. Furthermore, the binding features of compound A14 within E. coli PDHc E1 were investigated to provide useful insights for the further construction of new inhibitor by molecular docking, site-directed mutagenesis, and enzymatic assays. The results indicated that A14 had most powerful inhibition against E. coli PDHc E1 due to the establishment of stronger interaction with Glu571, Met194, Glu522, Leu264 and Phe602 at active site of E.coli PDHc E1. It could be used as a lead compound for further optimization, and may have potential as a new microbicide.
通过靶向大肠杆菌丙酮酸脱氢酶多酶复合物E1(PDHc E1)的硫胺素二磷酸(ThDP)结合位点,设计并合成了一系列具有N-酰腙部分的新型“开链”类ThDP类似物A、B和C,以体外探索它们对大肠杆菌PHDc E1的活性,并在体内进一步评估它们对微生物疾病的抑制活性。结果,A1-23对大肠杆菌PDHc E1表现出中度至强效的抑制活性(IC = 0.15 - 23.55μM)。强效抑制剂A13、A14、A15、C2对大肠杆菌PDHc E1具有强抑制活性,IC值分别为0.60、0.15、0.39和0.34μM,并且在微生物和哺乳动物之间具有良好的酶选择性抑制。特别是,最强大的抑制剂A14可以99.37%地控制水稻白叶枯病菌。此外,通过分子对接、定点诱变和酶促试验研究了化合物A14在大肠杆菌PDHc E1中的结合特征,为进一步构建新型抑制剂提供有用的见解。结果表明,A14对大肠杆菌PDHc E1具有最强的抑制作用,这是由于它与大肠杆菌PDHc E1活性位点的Glu571、Met194、Glu522、Leu264和Phe602建立了更强的相互作用。它可以用作进一步优化的先导化合物,并且可能具有作为新型杀菌剂的潜力。