Docking study of novel designed indazole derivatives against topoisomerase-II DNA gyrase enzyme for antibacterial screening

Nabeela Mareyam , Md Nematullah , Md Faheem Haider , Md Akbar , Md Azizur Rahman
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Abstract

Aim of the study was designed for the design of novel indazole derivatives and evaluation of their docking against topoisomerase-II DNA gyrase enzyme for the antibacterial screening. Different novel substituted indazol-3-yl benzenesulfonamide derivatives were designed for the synthesis from o-chlorobenzonitrile and phenyl hydrazine reaction and further, with benzene sulphonyl chloride reaction. These were evaluated for their docking targeting topoisomerase-II DNA gyrase enzyme for the antibacterial screening. A range of binding affinity (˗12.2 to ˗9.6 ​kcal/mol) was observed. Compound, 4-chloro-N-(1-phenyl-1H-indazol-3-yl)benzenesulfonamide had the highest binding affinity (˗12.2 ​kcal/mol) which is better than the standard norfloxacin (˗10.7 ​kcal/mol). Compounds (12a, 12c, 12e and 12g) with chloro-substitution at para position of sulfonamide had higher affinity as compared to the compounds (12b, 12d, 12f and 12h) with methyl substitution. A convenient method for the synthesis of indazole derivatives has been developed. 4-chloro-N-(1-phenyl-1H-indazol-3-yl)benzenesulfonamide had shown the best binding affinity. Further, more diverse bioactive moieties may be incorporated into indazole scaffold in the near future by future researchers and a great amount of effort may be dedicated to the exploration of medicinal approaches for their preparation and evaluation of their biological activities.

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新型吲唑衍生物与拓扑异构酶-II DNA 回旋酶的对接研究,用于抗菌筛选
该研究旨在设计新型吲唑衍生物,并评估其与拓扑异构酶-II DNA 回旋酶的对接情况,以进行抗菌筛选。研究人员设计了不同的新型取代吲唑-3-基苯磺酰胺衍生物,由邻氯苯腈和苯肼反应合成,并进一步与苯磺酰氯反应。在进行抗菌筛选时,对这些衍生物与拓扑异构酶-II DNA 回旋酶的对接情况进行了评估。观察到的结合亲和力范围为 ˗12.2 至 ˗9.6 kcal/mol。化合物 4-氯-N-(1-苯基-1H-吲唑-3-基)苯磺酰胺的结合亲和力最高(˗12.2 kcal/mol),优于标准的诺氟沙星(˗10.7 kcal/mol)。磺酰胺的对位被氯取代的化合物(12a、12c、12e 和 12g)与被甲基取代的化合物(12b、12d、12f 和 12h)相比具有更高的亲和力。现已开发出一种合成吲唑衍生物的简便方法。4-氯-N-(1-苯基-1H-吲唑-3-基)苯磺酰胺显示出最佳的结合亲和力。在不久的将来,研究人员可能会在吲唑支架中加入更多不同的生物活性分子,并致力于探索制备和评估其生物活性的药物方法。
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