Behera Santosh Kumar, Lambring Christoffer Briggs, Hashmi Albina, Gottipolu Sriharika, Basha Riyaz
National Institute of Pharmaceutical Education and Research, Ahmedabad, India.
University of North Texas Health Science Center at Fort Worth, Texas, USA.
Eur J Biol. 2023 Dec;82(2):280-288. doi: 10.26650/eurjbiol.2023.1352396. Epub 2023 Nov 23.
NAD(P)H: Quinone oxidoreductase1 (NQO1) plays a crucial role in cellular defense against oxidative stress. Overexpression of NQO1 is linked to various cancer pathways. Despite its potential, the actual mechanisms to inhibit NQO1 and increase the efficacy of standard therapeutic options are not yet established. Resveratrol is an anti-cancer polyphenol found in dietary products and red wine. The objective of this investigation is to employ in silico methods to explore how resveratrol interacts with NQO1.
Docking analysis of resveratrol against NQO1 was performed using Glide. The most efficiently docked complex was characterized and analyzed by measuring intermolecular (IM) hydrogen (H)-bonds and binding energy values, additional hydrophobic, and electrostatic interactions. IM interaction between complexed protein and compound was demonstrated using LigPlot+ and the Schrödinger ligand interaction module. Molecular dynamics tools were employed to examine the physical movement of molecules to evaluate how macromolecular structures relate to their functions.
The results of this investigation depicted a strong affinity of resveratrol against NQO1 followed by MD simulations (NQO1-resveratrol complex-binding energy: -2.847kcal/mol). Resveratrol's robust binding affinity through docking and molecular dynamic simulations highlights a significant change around 90 ns. The H-bonds number was inversely linked with the resveratrol-NQO1 complex stability. The NQO1-Resveratrol complex displayed dynamic motion, as revealed by porcupine projections, indicating alterations in its movement and flexibility.
The present analysis suggests a possible alteration in resveratrol's orientation in the protein binding pocket. The findings encourage further investigation, including validation using and assays.
NAD(P)H:醌氧化还原酶1(NQO1)在细胞抵御氧化应激中起关键作用。NQO1的过表达与多种癌症途径相关。尽管其具有潜力,但抑制NQO1并提高标准治疗方案疗效的实际机制尚未确立。白藜芦醇是一种存在于食品和红酒中的抗癌多酚。本研究的目的是采用计算机模拟方法探索白藜芦醇与NQO1的相互作用方式。
使用Glide对白藜芦醇与NQO1进行对接分析。通过测量分子间(IM)氢键和结合能值、额外的疏水和静电相互作用,对对接效率最高的复合物进行表征和分析。使用LigPlot+和薛定谔配体相互作用模块展示复合蛋白与化合物之间的IM相互作用。采用分子动力学工具检查分子的物理运动,以评估大分子结构与其功能的关系。
本研究结果表明白藜芦醇对NQO1具有很强的亲和力,随后进行了分子动力学模拟(NQO1 - 白藜芦醇复合物结合能:-2.847千卡/摩尔)。通过对接和分子动力学模拟,白藜芦醇强大的结合亲和力在约90纳秒时出现显著变化。氢键数量与白藜芦醇 - NQO1复合物稳定性呈负相关。如豪猪投影所示,NQO1 - 白藜芦醇复合物表现出动态运动,表明其运动和灵活性发生了改变。
目前的分析表明白藜芦醇在蛋白质结合口袋中的取向可能发生改变。这些发现鼓励进一步研究,包括使用实验和分析进行验证。