Sultana Nargis, Sarfraz Muhammad, Tanoli Saba Tahir, Akram Muhammad Safwan, Sadiq Abdul, Rashid Umer, Tariq Muhammad Ilyas
Department of Chemistry, University of Sargodha, Sargodha, Pakistan.
Department of Chemistry, COMSATS Institute of Information Technology, Abbottabad 22060, Pakistan.
Bioorg Chem. 2017 Jun;72:256-267. doi: 10.1016/j.bioorg.2017.04.009. Epub 2017 Apr 17.
Pursuing the strategy of developing potent AChE inhibitors, we attempted to carry out the N-substitution of 2,3-dihydroquinazolin-4(1H)-one core. A set of 32 N-alkylated/benzylated quinazoline derivatives were synthesized, characterized and evaluated for their inhibition against cholinesterases. N-alkylation of the series of the compounds reported previously (N-unsubstituted) resulted in improved activity. All the compounds showed inhibition of both enzymes in the micromolar to submicromolar range. Structure activity relationship (SAR) of the 32 derivatives showed that N-benzylated compounds possess good activity than N-alkylated compounds. N-benzylated compounds 2ad and 2af were found very active with their IC values toward AChE in submicromolar range (0.8µM and 0.6µM respectively). Binding modes of the synthesized compounds were explored by using GOLD (Genetic Optimization for Ligand Docking) suit v5.4.1. Computational predictions of ADMET studies reveal that all the compounds have good pharmacokinetic properties with no AMES toxicity and carcinogenicity. Moreover, all the compounds are predicted to be absorbed in human intestine and also have the ability to cross blood brain barrier. Overall, the synthesized compounds have established a structural foundation for the design of new inhibitors of cholinesterase.
为了寻求开发高效乙酰胆碱酯酶(AChE)抑制剂的策略,我们尝试对2,3 - 二氢喹唑啉 - 4(1H)- 酮核心进行N - 取代。合成了一组32种N - 烷基化/苄基化喹唑啉衍生物,对其进行了表征,并评估了它们对胆碱酯酶的抑制作用。对先前报道的一系列化合物(N - 未取代)进行N - 烷基化后活性得到了提高。所有化合物对两种酶的抑制作用均在微摩尔至亚微摩尔范围内。32种衍生物的构效关系(SAR)表明,N - 苄基化化合物比N - 烷基化化合物具有更好的活性。发现N - 苄基化化合物2ad和2af非常活跃,它们对AChE的IC值处于亚微摩尔范围(分别为0.8µM和0.6µM)。使用GOLD(配体对接的遗传优化)套件v5.4.1探索了合成化合物的结合模式。ADMET研究的计算预测表明,所有化合物都具有良好的药代动力学性质,没有AMES毒性和致癌性。此外,所有化合物预计都能在人体肠道中被吸收,并且有能力穿过血脑屏障。总体而言,合成的化合物为设计新型胆碱酯酶抑制剂奠定了结构基础。