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植物生物活性化合物作为严重急性呼吸综合征冠状病毒2型(SARS-CoV-2)主要蛋白酶(M)和刺突(S)糖蛋白抑制剂的潜力:一项分子对接研究。

Potential of Plant Bioactive Compounds as SARS-CoV-2 Main Protease (M) and Spike (S) Glycoprotein Inhibitors: A Molecular Docking Study.

作者信息

Tallei Trina Ekawati, Tumilaar Sefren Geiner, Niode Nurdjannah Jane, Kepel Billy Johnson, Idroes Rinaldi, Effendi Yunus, Sakib Shahenur Alam, Emran Talha Bin

机构信息

Department of Biology, Faculty of Mathematics and Natural Sciences, Sam Ratulangi University, Manado 95115, Indonesia.

Pharmacy Study Program, Faculty of Mathematics and Natural Sciences, Sam Ratulangi University, Manado 95115, Indonesia.

出版信息

Scientifica (Cairo). 2020 Dec 23;2020:6307457. doi: 10.1155/2020/6307457. eCollection 2020.

Abstract

Since the outbreak of the COVID-19 (coronavirus disease 19) pandemic, researchers have been trying to investigate several active compounds found in plants that have the potential to inhibit the proliferation of SARS-CoV-2 (severe acute respiratory syndrome coronavirus 2). The present study aimed to evaluate bioactive compounds found in plants using a molecular docking approach to inhibit the main protease (M) and spike (S) glycoprotein of SARS-CoV-2. The evaluation was performed on the docking scores calculated using AutoDock Vina (AV) as a docking engine. A rule of five (Ro5) was calculated to determine whether a compound meets the criteria as an active drug orally in humans. The determination of the docking score was performed by selecting the best conformation of the protein-ligand complex that had the highest affinity (most negative Gibbs' free energy of binding/Δ). As a comparison, nelfinavir (an antiretroviral drug), chloroquine, and hydroxychloroquine sulfate (antimalarial drugs recommended by the FDA as emergency drugs) were used. The results showed that hesperidin, nabiximols, pectolinarin, epigallocatechin gallate, and rhoifolin had better poses than nelfinavir, chloroquine, and hydroxychloroquine sulfate as spike glycoprotein inhibitors. Hesperidin, rhoifolin, pectolinarin, and nabiximols had about the same pose as nelfinavir but were better than chloroquine and hydroxychloroquine sulfate as M inhibitors. This finding implied that several natural compounds of plants evaluated in this study showed better binding free energy compared to nelfinavir, chloroquine, and hydroxychloroquine sulfate, which so far are recommended in the treatment of COVID-19. From quantum chemical DFT calculations, the ascending order of chemical reactivity of selected compounds was pectolinarin > hesperidin > rhoifolin > morin > epigallocatechin gallate. All isolated compounds' C=O regions are preferable for an electrophilic attack, and O-H regions are suitable for a nucleophilic attack. Furthermore, Homo-Lumo and global descriptor values indicated a satisfactory remarkable profile for the selected compounds. As judged by the RO5 and previous study by others, the compounds kaempferol, herbacetin, eugenol, and 6-shogaol have good oral bioavailability, so they are also seen as promising candidates for the development of drugs to treat infections caused by SARS-CoV-2. The present study identified plant-based compounds that can be further investigated in vitro and in vivo as lead compounds against SARS-CoV-2.

摘要

自新冠疫情爆发以来,研究人员一直在尝试研究植物中发现的几种具有抑制严重急性呼吸综合征冠状病毒2(SARS-CoV-2)增殖潜力的活性化合物。本研究旨在使用分子对接方法评估植物中发现的生物活性化合物对SARS-CoV-2主要蛋白酶(M)和刺突(S)糖蛋白的抑制作用。评估是基于使用AutoDock Vina(AV)作为对接引擎计算出的对接分数进行的。计算了五规则(Ro5)以确定一种化合物是否符合作为人类口服活性药物的标准。对接分数的确定是通过选择具有最高亲和力(最负的结合吉布斯自由能/Δ)的蛋白质-配体复合物的最佳构象来进行的。作为比较,使用了奈非那韦(一种抗逆转录病毒药物)、氯喹和硫酸羟氯喹(美国食品药品监督管理局推荐作为应急药物的抗疟药物)。结果表明,作为刺突糖蛋白抑制剂,橙皮苷、纳比西莫尔、果胶菌素、表没食子儿茶素没食子酸酯和芸香苷比奈非那韦、氯喹和硫酸羟氯喹具有更好的构象。橙皮苷、芸香苷、果胶菌素和纳比西莫尔与奈非那韦的构象大致相同,但作为M抑制剂比氯喹和硫酸羟氯喹更好。这一发现意味着本研究中评估的几种植物天然化合物与奈非那韦、氯喹和硫酸羟氯喹相比显示出更好的结合自由能,而奈非那韦、氯喹和硫酸羟氯喹是目前推荐用于治疗新冠肺炎的药物。从量子化学密度泛函理论(DFT)计算来看,所选化合物化学反应性的升序为果胶菌素>橙皮苷>芸香苷>桑色素>表没食子儿茶素没食子酸酯。所有分离化合物的C=O区域更易于发生亲电攻击,O-H区域适合亲核攻击。此外,最高已占分子轨道(Homo)-最低未占分子轨道(Lumo)和全局描述符值表明所选化合物具有令人满意的显著特征。根据五规则和其他人之前的研究判断,化合物山奈酚、草棉黄素、丁香酚和6-姜辣素具有良好的口服生物利用度,因此它们也被视为开发治疗SARS-CoV-2感染药物的有前景的候选物。本研究确定了可以在体外和体内进一步研究作为抗SARS-CoV-2先导化合物的植物源化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8dba/7773461/eb68dd7c7673/SCIENTIFICA2020-6307457.001.jpg

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