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作为抗菌剂的α-烷基化羰基化合物的对映选择性合成、表征、分子对接模拟和 ADMET 分析。

Enantioselective synthesis, characterization, molecular docking simulation and ADMET profiling of α-alkylated carbonyl compounds as antimicrobial agents.

机构信息

Chemistry Department, Faculty of Science, Tanta University, Tanta, 31527, Egypt.

Biochemistry Division, Chemistry Department, Faculty of Science, Tanta University, Tanta, 31527, Egypt.

出版信息

Sci Rep. 2024 May 21;14(1):11586. doi: 10.1038/s41598-024-61884-9.

Abstract

All living organisms produce only one enantiomer, so we found that all natural compounds are presented in enantiomerically pure form. Asymmetric synthesis is highly spread in medicinal chemistry because enantiomerically pure drugs are highly applicable. This study initially demonstrated the feasibility of a good idea for the asymmetric synthesis of α-alkylated carbonyl compounds with high enantiomeric purity ranging from 91 to 94% using different quinazolinone derivatives. The structure of all compounds was confirmed via elemental analysis and different spectroscopic data and the enantioselectivity was determined via HPLC using silica gel column. The synthesized compounds' mode of action was investigated using molecular docking against the outer membrane protein A (OMPA) and exo-1,3-beta-glucanase, with interpreting their pharmacokinetics aspects. The results of the antimicrobial effectiveness of these compounds revealed that compound 6a has a broad biocidal activity and this in-vitro study was in line with the in-silico results. Overall, the formulated compound 6a can be employed as antimicrobial agent without any toxicity with high bioavailability in medical applications.

摘要

所有生物体只产生一种对映异构体,因此我们发现所有天然化合物都以对映体纯的形式存在。不对称合成在药物化学中得到了广泛的应用,因为对映体纯的药物具有很高的适用性。本研究最初证明了使用不同的喹唑啉酮衍生物以高达 91-94%的对映体纯度进行α-烷基化羰基化合物不对称合成的好想法具有可行性。所有化合物的结构均通过元素分析和不同的光谱数据得到确认,并通过 HPLC 使用硅胶柱确定了对映选择性。通过对接外膜蛋白 A (OMPA) 和外切 1,3-β-葡聚糖酶来研究合成化合物的作用模式,并解释其药代动力学方面。这些化合物的抗菌效果的结果表明,化合物 6a 具有广泛的杀菌活性,这与体外研究结果一致。总的来说,所合成的化合物 6a 可以作为抗菌剂使用,没有任何毒性,在医学应用中具有很高的生物利用度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fc1/11109205/14339f437f6b/41598_2024_61884_Fig1_HTML.jpg

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