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一些新型阿苯达唑衍生物作为α-葡萄糖苷酶抑制剂的合成、分子对接研究和 ADME 预测。

Synthesis, Molecular Docking Studies and ADME Prediction of Some New Albendazole Derivatives as α-Glucosidase Inhibitors.

机构信息

marmara university.

出版信息

Acta Chim Slov. 2022 Sep 26;69(3):526-535. doi: 10.17344/acsi.2022.7387.

Abstract

A series of novel 2-(substituted arylidene)-N-(5-(propylthio)-2,3-dihydro-1H-benzo[d]imidazol-2-yl)hydrazine-1-carboxamide derivatives 3a-i were synthesized via condensation of N-(5-(propylthio)-1H-benzo[d]imidazol-2-yl) hydrazinecarboxamide (2), with the corresponding ketone or aldehydes. The chemical structures of the compounds prepared were confirmed by analytical and spectral data. The compounds were screened for their α-glucosidase inhibitory activity and all of them showed better inhibition than acarbose, except 3h. In particular, compound 3a proved to be the most active compound among all synthetic derivatives having IC50 value 12.88±0.98 μM. Also, molecular docking studies were carried out for the compounds to figure out the binding interactions. Compound 3a has exhibited the highest binding energy (ΔG = -9.4 kcal/mol) and the most hydrogen bond interactions with active sites. Eventually, in silico studies were in good agreement with in vitro studies.

摘要

通过 N-(5-(丙硫基)-1H-苯并[d]咪唑-2-基)肼甲酰胺(2)与相应的酮或醛缩合,合成了一系列新型 2-(取代芳基亚甲基)-N-(5-(丙硫基)-2,3-二氢-1H-苯并[d]咪唑-2-基)肼甲酰胺衍生物 3a-i。通过分析和光谱数据确认了所制备化合物的化学结构。对化合物进行了α-葡萄糖苷酶抑制活性筛选,除 3h 外,所有化合物的抑制活性均优于阿卡波糖。特别是化合物 3a 被证明是所有合成衍生物中最具活性的化合物,其 IC50 值为 12.88±0.98 μM。此外,还进行了化合物的分子对接研究,以了解其结合相互作用。化合物 3a 表现出最高的结合能(ΔG = -9.4 kcal/mol)和与活性位点的最多氢键相互作用。最终,计算研究与体外研究结果一致。

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