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基于羟肟酸的衍生物的分子设计作为幽门螺杆菌的脲酶抑制剂。

Molecular design of hydroxamic acid-based derivatives as urease inhibitors of Helicobacter pylori.

机构信息

College of Materials and Energy, South China Agricultural University, Guangzhou, 510630, China.

出版信息

Mol Divers. 2024 Aug;28(4):2229-2244. doi: 10.1007/s11030-024-10914-9. Epub 2024 Jul 17.

Abstract

Helicobacter pylori is the main causative agent of gastric cancer, especially non-cardiac gastric cancers. This bacterium relies on urease producing much ammonia to colonize the host. Herein, the study provides valuable insights into structural patterns driving urease inhibition for high-activity molecules designed via exploring known inhibitors. Firstly, an ensemble model was devised to predict the inhibitory activity of novel compounds in an automated workflow (R = 0.761) that combines four machine learning approaches. The dataset was characterized in terms of chemical space, including molecular scaffolds, clustering analysis, distribution for physicochemical properties, and activity cliffs. Through these analyses, the hydroxamic acid group and the benzene ring responsible for distinct activity were highlighted. Activity cliff pairs uncovered substituents of the benzene ring on hydroxamic acid derivatives are key structures for substantial activity enhancement. Moreover, 11 hydroxamic acid derivatives were designed, named mol1-11. Results of molecular dynamic simulations showed that the mol9 exhibited stabilization of the active site flap's closed conformation and are expected to be promising drug candidates for Helicobacter pylori infection and further in vitro, in vivo, and clinical trials to demonstrate in future.

摘要

幽门螺杆菌是胃癌的主要致病因子,尤其是非贲门部胃癌。该细菌依赖于产氨的脲酶来定植宿主。在此,该研究通过探索已知抑制剂,为高活性分子的设计提供了有关脲酶抑制结构模式的有价值的见解。首先,设计了一个集成模型,通过探索已知抑制剂,以自动工作流程(R = 0.761)来预测新型化合物的抑制活性。该数据集的特点是化学空间,包括分子支架、聚类分析、理化性质分布和活性悬崖。通过这些分析,突出了负责不同活性的偕氨肟基团和苯环。揭示羟肟酸衍生物苯环上取代基的活性悬崖对增强活性至关重要。此外,设计了 11 种羟肟酸衍生物,命名为 mol1-11。分子动力学模拟结果表明,mol9 表现出对活性位点瓣的封闭构象的稳定化,有望成为治疗幽门螺杆菌感染的有前途的候选药物,并在未来进一步进行体外、体内和临床试验。

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