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地拉罗司和取代 1,2,4-三唑衍生物的合成、生物评价及分子对接作为新型强效脲酶抑制剂的研究:重新定位候选药物的提出。

Synthesis, Biological Evaluation and Molecular Docking of Deferasirox and Substituted 1,2,4-Triazole Derivatives as Novel Potent Urease Inhibitors: Proposing Repositioning Candidate.

机构信息

Peptide Chemistry Research Center, K. N. Toosi University of Technology, P.O. Box, 15875-4416, Tehran, Iran.

Department of Medicinal Chemistry, School of Pharmacy, International Campus, Iran University of Medical Sciences, P.O. Box, 14665-354, Tehran, Iran.

出版信息

Chem Biodivers. 2020 May;17(5):e1900710. doi: 10.1002/cbdv.201900710. Epub 2020 Apr 21.

DOI:10.1002/cbdv.201900710
PMID:32187446
Abstract

A series of new deferasirox derivatives were synthesized through the reaction of monosubstituted hydrazides with 2-(2-hydroxyphenyl)-4H-benzo[e][1,3]oxazin-4-one. For the first time, deferasirox and some of its derivatives were evaluated for their in vitro inhibitory activity against Jack bean urease. The potencies of the members of this class of compounds are higher than that of acetohydroxamic acid. Two compounds, bearing tetrazole and hydrazine derivatives (bioisoester of carboxylate group), represented the most potent urease inhibitory activity with IC values of 1.268 and 3.254 μm, respectively. In silico docking studies were performed to delineate possible binding modes of the compounds with the enzyme, urease. Docking analysis suggests that the synthesized compounds were anchored well in the catalytic site and extending to the entrance of binding pocket and thus restrict the mobility of the flap by interacting with its crucial amino acid residues, CME592 and His593. The overall results of urease inhibition have shown that these target compounds can be further optimized and developed as a lead skeleton for the discovery of novel urease inhibitors.

摘要

通过单取代腙与 2-(2-羟基苯基)-4H-苯并[e][1,3]恶嗪-4-酮的反应,合成了一系列新的地拉罗司衍生物。地拉罗司及其一些衍生物首次被评估为其对刀豆脲酶的体外抑制活性。该类化合物的成员的效力高于乙酰羟肟酸。两种具有三唑和肼衍生物(羧酸酯基的生物同系物)的化合物(化合物 4e 和 4f)表现出最强的脲酶抑制活性,IC 值分别为 1.268 和 3.254μm。进行了计算机对接研究,以阐明化合物与酶(脲酶)的可能结合模式。对接分析表明,合成的化合物很好地固定在催化部位,并延伸到结合口袋的入口,从而通过与关键的氨基酸残基 CME592 和 His593 相互作用来限制瓣的迁移性。脲酶抑制的总体结果表明,这些靶化合物可以进一步优化并开发为发现新型脲酶抑制剂的先导骨架。

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