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新型异恶唑稠合杂环的生物活性:综合抗菌、抗氧化活性、SwissADME预测、分子对接和密度泛函理论分析

Bioactivity of novel isoxazole-fused heterocycles: comprehensive antimicrobial, antioxidant activities, SwissADME predictions, molecular docking, and DFT analysis.

作者信息

Reheim Mohamed A M Abdel, Abdou Moaz M, El-Gaby Mohamed S A, Al-Omari Mohammad Hasan, Abu-Rayyan Ahmed, Al-Assy Waleed H, Refat Hala M, Sarhan Ahmed A M, Hafiz Ibrahim S Abdel

机构信息

Department of Chemistry, Faculty of Science, Arish University, Arish, 45511, Egypt.

Egyptian Petroleum Research Institute, Nasr City, 11727, Cairo, Egypt.

出版信息

Mol Divers. 2025 Apr 17. doi: 10.1007/s11030-025-11180-z.

Abstract

Among the foremost goals for organic chemists is to discover novel approaches for the synthesis of a particular heterocyclic and its design. Our approach focused on the vital precursor 4-acetyl-3-phenylisoxazol-5(4H)-one 3, as this molecule has an endocyclic carbonyl function in position 5 adjacent to the substituted acetyl function at site 4. Therefore, compound 3 was a crucial component of many types of fused isoxazole. The investigators provide a straightforward synthesis of fused isoxazole from the following categories: pyrano[3,2-d]isoxazole 4 & 6, isochromeno[4,3-d]isoxazole 5, isoxazolo[4',5':5,6]pyrano[3,4-c]pyridine 7, thieno[3',4':4,5]pyrano [3,2-d]isoxazole 8, pyrazolo[4,3-d]isoxazole 10a,b and 11a,b, and isoxazolo[4,5-c]pyridazine derivatives 14a,b. The target compounds and their structures were supported by the results of H-NMR, IR and mass spectroscopy. Molecular docking studies highlighted strong binding affinities to bacterial enzymes crucial for cell wall synthesis, while DFT calculations provided deep insights into their electronic properties and stability. Additionally, the antioxidant potential of compounds 11a,b was assessed using DPPH and ABTS assays, showing impressive concentration-dependent activity. Addressing the critical issue of antibiotic resistance, especially due to β-lactamases, molecular docking affirmed the high binding propensity of these derivatives with essential β-lactamase proteins (PDB: 1CK3, 6MU9, and 6W2Z). These findings underscore the promise of isoxazoline derivatives as powerful antimicrobial and antioxidant agents, paving the way for further development in combating bacterial resistance and oxidative stress.

摘要

有机化学家的首要目标之一是发现合成特定杂环化合物及其设计的新方法。我们的方法聚焦于重要的前体4-乙酰基-3-苯基异恶唑-5(4H)-酮3,因为该分子在5位具有一个环内羰基官能团,与4位的取代乙酰基官能团相邻。因此,化合物3是多种稠合异恶唑的关键组成部分。研究人员从以下几类化合物中直接合成了稠合异恶唑:吡喃并[3,2-d]异恶唑4和6、异色烯并[4,3-d]异恶唑5、异恶唑并[4',5':5,6]吡喃并[3,4-c]吡啶7、噻吩并[3',4':4,5]吡喃并[3,2-d]异恶唑8、吡唑并[4,3-d]异恶唑10a,b和11a,b以及异恶唑并[4,5-c]哒嗪衍生物14a,b。目标化合物及其结构通过氢核磁共振、红外光谱和质谱结果得到了证实。分子对接研究突出了它们与对细胞壁合成至关重要的细菌酶具有很强的结合亲和力,而密度泛函理论计算深入揭示了它们的电子性质和稳定性。此外,使用二苯基苦味酰基自由基(DPPH)和2,2'-联氮-双-(3-乙基苯并噻唑啉-6-磺酸)二铵盐(ABTS)测定法评估了化合物11a,b的抗氧化潜力,结果显示出令人印象深刻的浓度依赖性活性。针对抗生素耐药性这一关键问题,特别是由于β-内酰胺酶导致的耐药性,分子对接证实了这些衍生物与重要的β-内酰胺酶蛋白(蛋白质数据银行编号:1CK3、6MU9和6W2Z)具有很高的结合倾向。这些发现强调了异恶唑啉衍生物作为强大的抗菌和抗氧化剂的前景,为对抗细菌耐药性和氧化应激的进一步发展铺平了道路。

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