Identifying the alpha-glucosidase inhibitory potential of dietary phytochemicals against diabetes mellitus type 2 via molecular interactions and dynamics simulation.

Mohd Adnan Kausar, Sma Shahid, Sadaf Anwar, M Kuddus, Mohammad Kalim Ahmad Khan, Amany Mohammed Khalifa, Fahmida Khatoon, Abdullah D Alotaibi, Salman F Alkhodairy, Mejdi Snoussi, Jamal M Arif
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引用次数: 6

Abstract

The research aims to identify the inhibitory potential of natural dietary phytochemicals against non-insulinotropic target protein alpha-glucosidase and its possible implications to diabetes mellitus type 2. A data set of sixteen plant-derived dietary molecules viz., 4,5-dimethyl-3-hydroxy-2(5H)-furanone, apigenin, bromelain, caffeic acid, cholecalciferol, dihydrokaempferol 7-o-glucopyranoside, galactomannan, genkwanin, isoimperatorin, luteolin, luteolin 7-o-glucoside, neohesperidin, oleanoic acid, pelargonidin-3-rutinoside, quercetin, and quinic acid were taken to accomplish molecular docking succeeded by their comparison with known inhibitors including acarbose, miglitol, voglibose, emiglitate, and 1-deoxynojirimycin. Among all phyto-compounds, bromelain (ΔG: -9.54 kcal/mol), cholecalciferol (-8.47 kcal/mol), luteolin (-9.02 kcal/mol), and neohesperidin (-8.53 kcal/mol) demonstrated better binding interactions with alpha-glucosidase in comparison to the best-known inhibitor, acarbose (ΔG: -7.93 kcal/mol). Molecular dynamics simulation of 10 ns duration, CYP450 site of metabolism identification, and prediction of activity spectra for substances depicted the bromelain as the most stable inhibitor compared to luteolin and acarbose. Findings of molecular interactions, molecular dynamics study, metabolism, and biological activity prediction proved bromelain as a potential alpha-glucosidase inhibitor. Thus, bromelain might be helpful as an insulin-independent therapeutic molecule towards controlling and managing diabetes mellitus type 2.

通过分子相互作用和动力学模拟确定膳食植物化学物质对2型糖尿病的α -葡萄糖苷酶抑制潜力。
本研究旨在确定天然膳食植物化学物质对非胰岛素性靶蛋白-葡萄糖苷酶的抑制潜力及其对2型糖尿病的可能影响。采用了16种植物源性膳食分子的数据集,即4,5-二甲基-3-羟基-2(5H)-呋喃酮、芹菜素、菠萝蛋白酶、咖啡酸、胆骨化醇、二氢山奈酚7-o-葡萄糖苷、半乳甘露聚糖、根红素、异欧前胡素、木犀草素、木犀草素7-o-葡萄糖苷、新橙皮苷、齐奥果酸、天葵苷-3-芦丁苷、槲皮素和奎宁酸,通过与已知抑制剂阿卡波糖、米格列醇、伏糖糖、emiglitate、和1-deoxynojirimycin。在所有植物化合物中,菠萝蛋白酶(ΔG: -9.54 kcal/mol)、胆钙化醇(-8.47 kcal/mol)、木草素(-9.02 kcal/mol)和新橙皮苷(-8.53 kcal/mol)与α -葡萄糖苷酶的结合作用优于阿卡波糖(ΔG: -7.93 kcal/mol)。10 ns持续时间的分子动力学模拟、CYP450位点的代谢鉴定和物质活性谱预测表明,与木草素和阿卡波糖相比,菠萝蛋白酶是最稳定的抑制剂。分子相互作用、分子动力学研究、代谢和生物活性预测等研究结果证明菠萝蛋白酶是一种潜在的α -葡萄糖苷酶抑制剂。因此,菠萝蛋白酶可能有助于作为胰岛素不依赖型治疗分子控制和治疗2型糖尿病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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