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Deciphering Structural Dynamics of Atherosclerosis Proteins: Insights from Crataegus oxyacantha Phytochemicals that Interceded Functional and Structural Changes in Targeted Atherosclerotic Proteins

机译:破译动脉粥样硬化蛋白的结构动力学:来自 Crataegus oxyacantha 植物化学物质的见解这些植物化学物质介入了靶向动脉粥样硬化蛋白的功能和结构变化

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摘要

Atherosclerosis (ASC) is characterized by foam cell-mediated plaque formation, vascular endothelial inflammation, and lipidosis and is the rudimentary cause of cardiovascular diseases. This is the pre-eminent global factor of mortality. This etiological paradigm is significantly influenced by several proteins, where 23 pivotal proteins involved in ASC were meticulously gleaned on the basis of literature studies. The crux of the present study was aimed to probe the drugability of four active phytochemicals from Crataegus oxyacantha (COC): epicatechin, gallate, tyramine, and vitexin against the selected 23 proteins. The molecular docking analysis was judiciously administered via Glide, the binding free energy was calculated in detail utilizing the prime molecular mechanics-generalized Born surface area (MM-GBSA) module, and a deeper comprehensive investigation of protein–ligand dynamic associations was elucidated through Desmond. Drawing from the upper echelons of our docking results, the molecular dynamics simulation outcomes revealed that the macrophage migration inhibitory factor and prethrombin-1 showed persistent binding nature with gallate. The bioactive compound known as gallate sourced from COC shows the best molecular association with pivotal proteins involved in ASC and has a promising therapeutic potential for drug development endeavors.
机译:动脉粥样硬化 (ASC) 的特征是泡沫细胞介导的斑块形成、血管内皮炎症和脂质沉积,是心血管疾病的基本原因。这是导致全球死亡率的首要因素。这种病因学范式受到几种蛋白质的显着影响,其中涉及 ASC 的 23 种关键蛋白是根据文献研究精心收集的。本研究的关键是旨在探究山楂 (COC) 中四种活性植物化学物质的成药性:表儿茶素、没食子酸酯、酪胺和牡荆素对选定的 23 种蛋白质的成药性。通过 Glide 明智地进行分子对接分析,利用素数分子力学广义 Born 表面积 (MM-GBSA) 模块详细计算结合自由能,并通过 Desmond 阐明了蛋白质-配体动力学关联的更深入综合研究。从我们对接结果的上层来看,分子动力学模拟结果显示,巨噬细胞迁移抑制因子和前凝血酶-1 显示出与没食子酸盐的持续结合性质。源自 COC 的称为没食子酸酯的生物活性化合物显示出与参与 ASC 的关键蛋白的最佳分子结合,并且在药物开发工作中具有广阔的治疗潜力。

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