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利用多种人工智能算法洞察阿尔茨海默病的有效靶点。

Insight into potent leads for alzheimer's disease by using several artificial intelligence algorithms.

机构信息

Artificial Intelligence Medical Center, School of Intelligent Systems Engineering, Sun Yat-sen University, Shenzhen, 510275, China.

Artificial Intelligence Medical Center, School of Intelligent Systems Engineering, Sun Yat-sen University, Shenzhen, 510275, China; Department of Clinical Laboratory, The Sixth Affiliated Hospital, Sun Yat-sen University, Guangzhou, 510655, China.

出版信息

Biomed Pharmacother. 2020 Sep;129:110360. doi: 10.1016/j.biopha.2020.110360. Epub 2020 Jun 16.

Abstract

Several proteins including S-nitrosoglutathione reductase (GSNOR), complement Factor D, complement 3b (C3b) and Protein Kinase R-like Endoplasmic Reticulum Kinase (PERK), have been demonstrated to be involved in pathogenesis pathways for Alzheimer's disease (AD) and considered as potential treatment targets to AD. Based on the concept of multitargets, a network pharmacology-based approach was employed to investigate potential Traditional Chinese Medicine (TCM) candidates that can dock well with GSNOR, C3b, Factor D and PERK proteins. To predict the bioactivities of candidates, Artificial Intelligence (AI) algorithms composed of seven machine learning algorithms and a deep learning model were performed to validate the docking results. Furthermore, in this study, we propose a novel combined method for efficiently exploring the predicted results of AI algorithms. Besides, Comparative force field analysis (CoMFA) and comparative similarity indices analysis (CoMSIA) were performed to construct predicted models. The results show that the square correlation coefficients (R) of all models are almost higher than 0.75, which also acquire good achievements on the test set. Moreover, the binding stability of the potential inhibitors were evaluated using 100 ns of MD simulation. Collectively, this study elucidate that the herbs Ardisia japonica, Ligusticum chuanxiong, Lippia nodiflora and Mirabilis jalapa containing 2,2'-[benzene-1,4-diylbis(methanediyloxybenzene-4,1-diyl)]bis(oxoacetic acid), Glyasperin B, Nodifloridin A, Miraxanthin III and l-Valine-l-valine anhydride might be a potential medicine formula for AD.

摘要

几种蛋白质,包括 S-亚硝基谷胱甘肽还原酶(GSNOR)、补体因子 D、补体 3b(C3b)和蛋白激酶 R 样内质网激酶(PERK),已被证明参与阿尔茨海默病(AD)的发病机制途径,并被认为是 AD 的潜在治疗靶点。基于多靶点的概念,采用网络药理学方法研究了与 GSNOR、C3b、Factor D 和 PERK 蛋白结合良好的潜在中药(TCM)候选药物。为了预测候选药物的生物活性,采用了由 7 种机器学习算法和一个深度学习模型组成的人工智能(AI)算法来验证对接结果。此外,在本研究中,我们提出了一种新的联合方法,用于有效地探索 AI 算法的预测结果。此外,还进行了比较力场分析(CoMFA)和比较相似性指数分析(CoMSIA),以构建预测模型。结果表明,所有模型的平方相关系数(R)几乎都高于 0.75,在测试集上也取得了较好的效果。此外,还通过 100 ns 的 MD 模拟评估了潜在抑制剂的结合稳定性。综上所述,本研究阐明了含有 2,2'-[苯-1,4-二基双(甲烷二氧基苯-4,1-二基)]双(氧代乙酸)、Glyasperin B、Nodifloridin A、Miraxanthin III 和 l-Valine-l-valine anhydride 的 Ardisia japonica、Ligusticum chuanxiong、Lippia nodiflora 和 Mirabilis jalapa 等草药可能是治疗 AD 的潜在药物配方。

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