从地方性旱莲草中分离出的奈潘都苷 B 的分子对接、分子动力学、MM/PBSA 方法和生物活性研究。

IF 2.7 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yunus Başar, İbrahim Demirtaş, Semiha Yenigün, Yaşar İpek, Tevfik Özen, Lütfi Behçet
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引用次数: 0

摘要

使用硅胶(正己烷、甲醇、乙酸乙酯和二氯甲烷)和sephadex LH-20(65%甲醇-35%氯仿)柱层析法,从特有的Nepeta aristata粗提取物(CH3OH-CHCl3)的气生部分分离出了Nepetanudoside B(NNB)。在活性指导下分离出具有酶抑制和 DNA 保护特性的甲醇子馏分后,采用制备型高效液相色谱法纯化 NNB。采用 1H、13C、COSY、HSQC、HMBC 和 LC-MS/MS 对 NNB 进行了测定。研究比较了 NNB 与传统药物在抑制脲酶、α-淀粉酶、碳酸酐酶 (CA)、脂肪酶、α-葡萄糖苷酶和酪氨酸酶等酶方面的效果,以及其保护 DNA 的能力。此外,还利用酶动力学和分子对接进行了评估。NNB 对脲酶(1.28 ± 0.00 µg/mL)、脂肪酶(5.83 ± 0.10 µg/mL)、BChE(3.73 ± 0.46 µg/mL)、酪氨酸酶(7.39 ± 0.00 µg/mL)、α-葡萄糖苷酶(10.95 ± 0.00 µg/mL)、α-淀粉酶(22.11 ± 1.03 µg/mL)和 AChE(25.68 ± 3.32 µg/mL)。NNB 在 α-葡萄糖苷酶(-233)和 BChE(-8.90 kcal/mol)中的结合能具有较高的 MolDock 得分。在酶动力学研究中,确定脲酶、乙酰胆碱酯酶、α-葡萄糖苷酶、脂肪酶和 CA 为非竞争性抑制机制,而 BChE 和酪氨酸酶为竞争性抑制机制。它们的 Ki 值分别为 0.09、0.24、0.09、0.10、0.08、0.05 和 0.07 mM。对 NNB-BChE 与 MM/PBSA 的相互作用进行了分子动力学模拟研究,计算了结合自由能 RMSD、RMSF、Rg、SASA 和氢键数。NNB 的适用性和有效性已在食品和制药行业得到证实。NNB 分子可作为 BChE 抑制剂进行开发研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular docking, molecular dynamics, MM/PBSA approaches and bioactivity studies of nepetanudoside B isolated from endemic Nepeta aristata.

Nepetanudoside B (NNB) was isolated from aerial parts of endemic Nepeta aristata crude extract (CH3OH-CHCl3) using silica gel (n-hexane, methanol, ethyl acetate, and dichlorometane, respectively) and sephadex LH-20 (65% Methanol-35% Chloroform) column chromatographies. Preparative-HPLC was used to purify NNB after activity-guided isolation of methanol sub-fractions with enzyme inhibitory and DNA protective properties. The NNB was determined using 1H,13C, COSY, HSQC, HMBC, and LC-MS/MS. The study compared the effects of NNB with conventional drugs in terms of its ability to inhibit enzymes such as urease, α-amylase, carbonic anhydrase (CA), lipase, α-glucosidase, and tyrosinase, as well as its ability to protect DNA. Enzyme kinetic and molecular docking were also used to evaluate this. NNB exhibited the best inhibitory activity on urease (1.28 ± 0.00 µg/mL), lipase (5.83 ± 0.10 µg/mL), BChE (3.73 ± 0.46 µg/mL), tyrosinase (7.39 ± 0.00 µg/mL), α-glucosidase (10.95 ± 0.00 µg/mL), α-amylase (22.11 ± 1.03 µg/mL) and AChE (25.68 ± 3.32 µg/mL), respectively. NNB has higher MolDock scores with binding energy in α-glucosidase (-233) and BChE (-8.90 kcal/mol). In enzyme kinetics studies, it was determined that urease, AChE, α-glucosidase, lipase, and CA were non-competitive , while BChE and tyrosinase were competitive inhibition mechanisms. Their Ki values were calculated as 0.09, 0.24, 0.09, 0.10, 0.08, 0.05, and 0.07 mM, respectively. Molecular dynamics simulation studies were performed for the interactions of NNB-BChE with MM/PBSA binding free energey RMSD, RMSF, Rg, SASA, and also the number of hydrogen bonds was calculated. The suitability and effectiveness of NNB have been proven in the food and pharmaceutical industries. The NNB molecule may lead to development studies as a BChE inhibitor.

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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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