Synthesis of pyridin-3-yl-1,3,4-oxadiazole and 5-p-tolyl-1,3,4-oxadiazole derivatives and their evaluation as antihyperglycemic agents, AChE and BuChE inhibitors, and antioxidants

IF 4 2区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Molecular Structure Pub Date : 2024-11-24 DOI:10.1016/j.molstruc.2024.140856
Bibi Fatima , Faiza Saleem , Uzma Salar , Sridevi Chigurupati , Shatha Ghazi Felemban , Sreenath Konanki , Zaheer Ul-Haq , Sajda Ashraf , Muhammad Taha , Khalid Mohammed Khan
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Abstract

Thirty oxadiazole derivatives 1–30 were synthesized via nucleophilic substitution reactions between 1,3,4-oxadiazole-2-thiol and benzyl/phenacyl halides. The structural elucidation of compounds was done by EI-MS, HREI-MS, 1HNMR , and 13CNMR . The compounds were divided into three categories based on their substitution patterns. Among thirty synthetic compounds, four compounds, 13, 14, 15, and 19, were found to be new. The inhibitory activities of compounds were evaluated against α-amylase, α-glucosidase, AChE, and BuChE in vitro. Compound 8 (IC50 = 20.71 ± 0.16; 19.04 ± 0.52 µM), possessing a 2-chloro-4-fluoro benzyl ring, demonstrated the highest antihyperglycemic activity among these oxadiazoles. Despite showing slightly lower activity than the standard acarbose (IC50 = 13.19 ± 0.26; 16.28 ± 0.24 µM), it can be a potential candidate for further exploration as an antihyperglycemic agent. Compound 16 (IC50 = 7.33 ± 0.02; 9.5 ± 0.16 µM) containing an unsubstituted phenacyl group demonstrated the highest inhibitory potential against AChE and BChE enzymes as compared to the standard donepezil with IC50 values of 2.05 ± 0.12 µM and 4.02 ± 0.06 µM. Molecular docking analysis revealed favorable interactions, including hydrogen bonding, hydrophobic, and π-π stacking interactions between the compounds and the target proteins. Additionally, the antioxidant potential of the compounds was assessed using DPPH and ABTS radical scavenging assays, and compounds revealed significant activities. The study provides valuable insights into the structure-activity relationship of these compounds, which could guide future drug design efforts for more potent enzyme inhibitors.

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吡啶-3-酰基-1,3,4-恶二唑和5-对苯基-1,3,4-恶二唑衍生物的合成及其作为降糖剂、AChE和BuChE抑制剂和抗氧化剂的评价
通过1,3,4-恶二唑-2-硫醇与苯基/phenacyl卤化物的亲核取代反应,合成了30个恶二唑衍生物1 - 30。化合物的结构通过EI-MS、HREI-MS、1HNMR和13CNMR进行了解析。根据化合物的取代模式将其分为三类。在30个合成化合物中,发现了4个新化合物,分别是13、14、15和19。体外测定化合物对α-淀粉酶、α-葡萄糖苷酶、AChE和BuChE的抑制活性。化合物8 (IC50 = 20.71±0.16;19.04±0.52µM),含有一个2-氯-4-氟苄基环,在这些恶二唑中显示出最高的降糖活性。尽管其活性略低于标准阿卡波糖(IC50 = 13.19±0.26;16.28±0.24µM),可作为一种潜在的抗高血糖药物进行进一步的探索。化合物16 (IC50 = 7.33±0.02;与标准多奈哌齐相比,含有非取代phenacyl基团的多奈哌齐对AChE和BChE酶的抑制潜力最高,IC50值分别为2.05±0.12µM和4.02±0.06µM。分子对接分析揭示了化合物与靶蛋白之间的良好相互作用,包括氢键、疏水和π-π堆叠相互作用。此外,通过DPPH和ABTS自由基清除实验评估了化合物的抗氧化潜力,化合物显示出显著的活性。该研究为这些化合物的结构-活性关系提供了有价值的见解,可以指导未来设计更有效的酶抑制剂的药物。
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来源期刊
Journal of Molecular Structure
Journal of Molecular Structure 化学-物理化学
CiteScore
7.10
自引率
15.80%
发文量
2384
审稿时长
45 days
期刊介绍: The Journal of Molecular Structure is dedicated to the publication of full-length articles and review papers, providing important new structural information on all types of chemical species including: • Stable and unstable molecules in all types of environments (vapour, molecular beam, liquid, solution, liquid crystal, solid state, matrix-isolated, surface-absorbed etc.) • Chemical intermediates • Molecules in excited states • Biological molecules • Polymers. The methods used may include any combination of spectroscopic and non-spectroscopic techniques, for example: • Infrared spectroscopy (mid, far, near) • Raman spectroscopy and non-linear Raman methods (CARS, etc.) • Electronic absorption spectroscopy • Optical rotatory dispersion and circular dichroism • Fluorescence and phosphorescence techniques • Electron spectroscopies (PES, XPS), EXAFS, etc. • Microwave spectroscopy • Electron diffraction • NMR and ESR spectroscopies • Mössbauer spectroscopy • X-ray crystallography • Charge Density Analyses • Computational Studies (supplementing experimental methods) We encourage publications combining theoretical and experimental approaches. The structural insights gained by the studies should be correlated with the properties, activity and/ or reactivity of the molecule under investigation and the relevance of this molecule and its implications should be discussed.
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