酰化吡喃葡萄糖苷:傅立叶变换红外光谱(FTIR)、核磁共振成像(NMR)、傅立叶变换可见光谱(FMO)、质谱(MEP)、分子对接、动力学模拟、ADMET 以及对细菌和真菌病原体的抗菌活性

IF 3.8 Q2 CHEMISTRY, PHYSICAL
Nasrin Akter , Supriyo Saha , Md. Ahad Hossain , Kabir M. Uddin , Ajmal R. Bhat , Sumeer Ahmed , Sarkar M.A. Kawsar
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引用次数: 0

摘要

碳水化合物是自然界中最丰富、最广泛的生物大分子之一,在多种生物功能中发挥着不可或缺的作用,同时也是一座尚未开发的医药应用潜力宝库。从这个角度出发,本研究旨在通过全面的体外抗菌筛选、理化分析、分子对接和分子动力学分析以及药代动力学预测,探索和评估具有不同脂肪族基团的甲基α-D-吡喃葡萄糖苷衍生物 2-6 的合成和光谱表征。在可控条件下,对甲基α-D-吡喃葡萄糖苷进行单摩尔一步丙酰化,得到了 6-O-丙酰基衍生物 2,并开发出了基于吡喃葡萄糖苷的潜在抗菌衍生物,这些衍生物又以相当好的产率转化成了四种更新的 2,3,4-三-O-吡喃葡萄糖苷衍生物(3-6)。通过分析新合成类似物的理化、元素、傅立叶变换红外光谱和核磁共振光谱数据,确定了它们的化学结构。针对五种细菌和两种真菌的体外抗菌试验表明,与抗真菌活性相比,这些合成的类似物具有良好的抗菌功能。结构-活性关系(SAR)分析表明,在核糖分子中加入月桂酰基、硬脂酰基和棕榈酰基可提高对细菌和真菌菌株的抗菌效力。为了支持这一观点,对 3TI6 H1N1 受体和 6VMZ H5N1 受体进行了分子对接实验。从 FMO、HOMO-LUMO 和 MEP 特性的角度研究了分子与溶剂的相互作用。此外,还进行了 100 ns 的分子动力学模拟,以监测受体 6VMZ 在硅生理条件下形成的复合结构的行为,从而检验其随着时间推移的稳定性,结果表明在甲基 α-D 吡喃葡萄糖苷衍生物的刺激环境中,该结构具有稳定的构象和结合模式。药代动力学预测研究评估了它们的吸收、分布、代谢和毒性特性,药代动力学预测和药物相似性预测的结合在硅学中显示出了良好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Acylated glucopyranosides: FTIR, NMR, FMO, MEP, molecular docking, dynamics simulation, ADMET and antimicrobial activity against bacterial and fungal pathogens

Acylated glucopyranosides: FTIR, NMR, FMO, MEP, molecular docking, dynamics simulation, ADMET and antimicrobial activity against bacterial and fungal pathogens

Carbohydrates, among the most abundant and widespread biomolecules in nature, play indispensable roles in diverse biological functions and represent a treasure trove of untapped potential for pharmaceutical applications. From this perspective, the present study was designed to explore and evaluate the synthesis and spectral characterization of methyl α-D-glucopyranoside derivatives 2-6 with different aliphatic groups through comprehensive in vitro antimicrobial screening, physicochemical analysis, molecular docking and molecular dynamics analysis, and pharmacokinetic prediction. The unimolar one-step propionylation of methyl α-D-glucopyranoside under controlled conditions furnished 6-O-propionyl derivative 2 and the development of glucoopyranoside-based potential antimicrobial derivatives, which were further converted into four newer 2,3,4-tri-O-glucopyranoside derivatives (3-6) in reasonably good yields. The chemical structures of the newly synthesized analogs were ascertained by analyzing their physicochemical, elemental, FTIR, and NMR spectroscopic data. In vitro antimicrobial tests against five bacteria and two fungi indicated the promising antibacterial functionality of these synthesized analogs compared with their antifungal activity. Structure-activity relationship (SAR) analysis indicated that adding lauroyl> stearoyl > palmitoyl groups to the ribose moiety increased the potency against bacterial and fungal strains. In support of this observation, molecular docking experiments were performed on the 3TI6 H1N1 receptor and the 6VMZ H5N1 receptor. Molecular interactions with solvents were investigated in terms of FMO, HOMO-LUMO, and MEP properties. In addition, a 100 ns molecular dynamics simulation process was performed to monitor the behavior of the complex structure formed by the receptor 6VMZ under in silico physiological conditions to examine its stability over time, which revealed a stable conformation and binding pattern in a stimulating environment of methyl α-D-glucopyranoside derivatives. Pharmacokinetic predictions were investigated to evaluate their absorption, distribution, metabolism and toxic properties, and the combination of pharmacokinetic and drug-likeness predictions has shown promising results in silico.

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来源期刊
Chemical Physics Impact
Chemical Physics Impact Materials Science-Materials Science (miscellaneous)
CiteScore
2.60
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65
审稿时长
46 days
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