Zarenezhad Elham, Montazer Mohammad Nazari, Tabatabaee Masoumeh, Irajie Cambyz, Iraji Aida
Noncommunicable Diseases Research Center, Fasa University of Medical Sciences, Fasa, Iran.
Department of Medicinal Chemistry, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
BMC Chem. 2022 Jul 11;16(1):53. doi: 10.1186/s13065-022-00844-8.
The simple and greener one-pot approach for the synthesis of biscoumarin derivatives using catalytic amounts of nano-MoO catalyst under mortar-pestle grinding was described. The use of non-toxic and mild catalyst, cost-effectiveness, ordinary grinding, and good to the excellent yield of the final product makes this procedure a more attractive pathway for the synthesis of biologically remarkable pharmacophores. Accordingly, biscoumarin derivatives were successfully extended in the developed protocols. Next, a computational investigation was performed to identify the potential biological targets of this set of compounds. In this case, first, a similarity search on different virtual libraries was performed to find an ideal biological target for these derivatives. Results showed that the synthesized derivatives can be α-glucosidase inhibitors. In another step, molecular docking studies were carried out against human lysosomal acid-alpha-glucosidase (PDB ID: 5NN8) to determine the detailed binding modes and critical interactions with the proposed target. In silico assessments showed the gold score value in the range of 17.56 to 29.49. Additionally, molecular dynamic simulations and the MM-GBSA method of the most active derivative against α-glucosidase were conducted to study the behavior of selected compounds in the biological system. Ligand 1 stabilized after around 30 ns and participated in various interactions with Trp481, Asp518, Asp616, His674, Phe649, and Leu677 residues.
描述了一种简单且更环保的一锅法,即在研钵研磨条件下使用催化量的纳米MoO催化剂合成双香豆素衍生物。使用无毒且温和的催化剂、成本效益、普通研磨以及最终产物的良好至优异产率,使得该方法成为合成具有生物学意义的药效基团的更具吸引力的途径。因此,双香豆素衍生物在已开发的方案中成功扩展。接下来,进行了一项计算研究以确定这组化合物的潜在生物学靶点。在这种情况下,首先,在不同的虚拟库上进行相似性搜索,以找到这些衍生物的理想生物学靶点。结果表明,合成的衍生物可以是α-葡萄糖苷酶抑制剂。在另一步骤中,针对人溶酶体酸性α-葡萄糖苷酶(PDB ID:5NN8)进行分子对接研究,以确定与所提出靶点的详细结合模式和关键相互作用。计算机模拟评估显示金分值在17.56至29.49范围内。此外,对最具活性的α-葡萄糖苷酶衍生物进行了分子动力学模拟和MM-GBSA方法,以研究所选化合物在生物系统中的行为。配体1在约30 ns后稳定下来,并与Trp481、Asp518、Asp616、His674、Phe649和Leu677残基参与了各种相互作用。