Faculty of Pharmacy, Middle East University, Queen Alia Airport Street, Amman, P.O. Box No. 11610, Jordan.
Interdisciplinary Research Unit for Cancer Prevention and Treatment, Baclesse Cancer Centre, Université de Caen Normandie Inserm Anticipe UMR 1086, Normandie Univ, Research Building, F‑14000 François 3 Avenue Général Harris, BP 45026, 14076, Cedex 05 Caen, France.
Sci Rep. 2024 Mar 26;14(1):7098. doi: 10.1038/s41598-024-57702-x.
Peptidoglycan is a carbohydrate with a cross-linked structure that protects the cytoplasmic membrane of bacterial cells from damage. The mechanism of peptidoglycan biosynthesis involves the main synthesizing enzyme glycosyltransferase MurG, which is known as a potential target for antibiotic therapy. Many MurG inhibitors have been recognized as MurG targets, but high toxicity and drug-resistant Escherichia coli strains remain the most important problems for further development. In addition, the discovery of selective MurG inhibitors has been limited to the synthesis of peptidoglycan-mimicking compounds. The present study employed drug discovery, such as virtual screening using molecular docking, drug likeness ADMET proprieties predictions, and molecular dynamics (MD) simulation, to identify potential natural products (NPs) for Escherichia coli. We conducted a screening of 30,926 NPs from the NPASS database. Subsequently, 20 of these compounds successfully passed the potency, pharmacokinetic, ADMET screening assays, and their validation was further confirmed through molecular docking. The best three hits and the standard were chosen for further MD simulations up to 400 ns and energy calculations to investigate the stability of the NPs-MurG complexes. The analyses of MD simulations and total binding energies suggested the higher stability of NPC272174. The potential compounds can be further explored in vivo and in vitro for promising novel antibacterial drug discovery.
肽聚糖是一种具有交联结构的碳水化合物,可保护细菌细胞的细胞质膜免受损伤。肽聚糖生物合成的机制涉及主要的合成酶糖基转移酶 MurG,它被认为是抗生素治疗的潜在靶点。许多 MurG 抑制剂已被认为是 MurG 的靶点,但高毒性和耐药性的大肠杆菌菌株仍然是进一步发展的最重要问题。此外,选择性 MurG 抑制剂的发现仅限于合成肽聚糖模拟化合物。本研究采用药物发现方法,如使用分子对接的虚拟筛选、药物相似性 ADMET 特性预测和分子动力学 (MD) 模拟,来鉴定大肠杆菌的潜在天然产物 (NPs)。我们对 NPASS 数据库中的 30926 种 NPs 进行了筛选。随后,其中 20 种化合物成功通过了效力、药代动力学、ADMET 筛选测定,并且通过分子对接进一步证实了它们的验证。选择最好的三个命中物和标准物进行进一步的 MD 模拟,时间长达 400 ns,并进行能量计算,以研究 NPs-MurG 复合物的稳定性。MD 模拟和总结合能的分析表明 NPC272174 的稳定性更高。潜在的化合物可以在体内和体外进一步探索,以发现有前途的新型抗菌药物。