Design of novel isoxazole derivatives as tubulin inhibitors using computer-aided techniques: QSAR modeling, in silico ADMETox, molecular docking, molecular dynamics, biological efficacy, and retrosynthesis.

IF 2.7 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Youness Moukhliss, Yassine Koubi, Imran Zafar, Marwa Alaqarbeh, Hamid Maghat, Abdelouahid Sbai, Tahar Lakhlifi, Mohammed Bouachrine
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Abstract

In the current work, computational methods were used to investigate new isoxazole derivatives that could be used as tubulin inhibitors. The study aims to develop a reliable quantitative structure-activity relationship (QSAR) model, following the criteria set by Golbraikh, Tropsha, and Roy. As a result, seven candidate compounds were developed, all having higher activity than the well-established anticancer agent Cisplatin (Cisp). According to the ADMETox in silico test, the candidates Pr4, Pr5, and P6 can be toxic. As a result, we have chosen to focus our study on compounds Pr1, Pr2, and Pr3. Molecular docking analysis revealed that drug candidate Pr2 exhibits the highest stability within the oxidized quinone reductase 2 (PDB ID: 4zvm), target receptor (ΔG(Pr2) = ΔG(Pr3) = -10.4 < ΔG(Pr1) = -10.0 < ΔG(Cisp) = -7.3 kcal/mol). This finding aligns with the activity predictions made by the QSAR model. Furthermore, molecular dynamics simulations of the Pr2-4zvm complex over 100 ns confirm the ligand's robust stability within the receptor's active site, supporting the results obtained from molecular docking and the QSAR model predictions. The CaverDock software was utilized to identify the tunnels likely to be followed by ligands moving from the active site to the receptor surface. This analysis also helped in determining the biological efficacy of the target compounds. The results indicated that the Pr2 compound is more effective than the others. Finally, the computer-assisted retrosynthesis process of two high confidence sequences was used to synthesize drug candidates.

利用计算机辅助技术设计新型异噁唑衍生物作为微管蛋白抑制剂:QSAR 建模、默克 ADMETox、分子对接、分子动力学、生物功效和逆合成。
在目前的工作中,我们使用计算方法研究了可用作微管蛋白抑制剂的新异噁唑衍生物。研究的目的是按照 Golbraikh、Tropsha 和 Roy 所设定的标准,建立一个可靠的定量结构-活性关系(QSAR)模型。结果开发出了七种候选化合物,它们的活性均高于成熟的抗癌药物顺铂(Cisp)。根据 ADMETox in silico 测试,候选化合物 Pr4、Pr5 和 P6 可能具有毒性。因此,我们选择将研究重点放在化合物 Pr1、Pr2 和 Pr3 上。分子对接分析表明,候选药物 Pr2 在氧化醌还原酶 2(PDB ID:4zvm)靶受体中表现出最高的稳定性(ΔG(Pr2) = ΔG(Pr3) = -10.4 < ΔG(Pr1) = -10.0 < ΔG(Cisp) = -7.3 kcal/mol)。这一结果与 QSAR 模型预测的活性相符。此外,对 Pr2-4zvm 复合物进行的超过 100 ns 的分子动力学模拟证实了配体在受体活性位点内的稳定性,从而支持了分子对接和 QSAR 模型的预测结果。利用 CaverDock 软件确定了配体从活性位点移动到受体表面可能经过的隧道。这项分析还有助于确定目标化合物的生物功效。结果表明,Pr2 化合物比其他化合物更有效。最后,两个高置信度序列的计算机辅助逆合成过程被用于合成候选药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomolecular Structure & Dynamics
Journal of Biomolecular Structure & Dynamics 生物-生化与分子生物学
CiteScore
8.90
自引率
9.10%
发文量
597
审稿时长
2 months
期刊介绍: The Journal of Biomolecular Structure and Dynamics welcomes manuscripts on biological structure, dynamics, interactions and expression. The Journal is one of the leading publications in high end computational science, atomic structural biology, bioinformatics, virtual drug design, genomics and biological networks.
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