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基于乙酰羟酸合酶结构的新型先导化合物的合理设计与筛选研究

Rational design and screening study of novel lead compound based on acetohydroxyacid synthase structure.

作者信息

Jin Jingnan, Qi Xiaojuan, Yao Dandan, Mao Bangqiang, Li Jianhong, Zhang Qingye, Chen Changshui

机构信息

College of Science, Huazhong Agricultural University, Wuhan, 430070, China.

出版信息

Chem Biol Drug Des. 2014 Sep;84(3):316-24. doi: 10.1111/cbdd.12320. Epub 2014 May 12.

Abstract

Acetohydroxyacid synthase (AHAS) is a key target and has extensive application in the process of herbicide discovery. However, the problem of weed resistance is gradually serious with long-term excessive use of commercial AHAS-inhibiting herbicides, and so, it is urgent to develop novel herbicides. In this study, a virtual screening was performed based on the active site of AHAS. Then, the hit-10 compound with the IC50 value of 47.41 mg/L was selected as lead compound based on the biological testing. Subsequently, the optimization design and syntheses of lead compound were carried out according to the analyzing results of mechanism and receptor-/ligand-binding mode. Three novel 5-substituted benzyl-1,3,4-thiadiazol-2-carbamic acid phenyl ester derivatives were designed and synthesized. Bioactive assay results of the three target compounds showed that all of them displayed the higher inhibition than lead compound to AHAS, with the IC50 values in the 23.54-32.05 mg/L range, and the inhibition rates were increased by 30-50%. Finally, we also analyzed the possible inhibitory mechanism of the three target compounds based on the molecular docking between AHAS and target compounds. This study would provide a novel chemical structure for the discovery of novel AHAS herbicides.

摘要

乙酰羟酸合酶(AHAS)是一个关键靶点,在除草剂研发过程中有广泛应用。然而,随着商业化AHAS抑制型除草剂的长期过度使用,杂草抗性问题日益严重,因此,开发新型除草剂迫在眉睫。在本研究中,基于AHAS的活性位点进行了虚拟筛选。然后,根据生物学测试,选择IC50值为47.41 mg/L的命中-10化合物作为先导化合物。随后,根据作用机制和受体-配体结合模式的分析结果,对先导化合物进行了优化设计与合成。设计并合成了三种新型的5-取代苄基-1,3,4-噻二唑-2-氨基甲酸苯酯衍生物。三种目标化合物的生物活性测定结果表明,它们对AHAS的抑制作用均高于先导化合物,IC50值在23.54-32.05 mg/L范围内,抑制率提高了30-50%。最后,基于AHAS与目标化合物之间的分子对接,分析了三种目标化合物可能的抑制机制。本研究将为新型AHAS除草剂的发现提供一种新型化学结构。

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