Mahur Pragati, Sharma Abhishek, Singh Amit Kumar, Muthukumaran Jayaraman, Jain Monika
Department of Biotechnology, Sharda School of Engineering and Technology, Sharda University, 201310, Greater Noida, Uttar Pradesh, India.
Chem Biodivers. 2025 Feb;22(2):e202402053. doi: 10.1002/cbdv.202402053. Epub 2024 Nov 9.
Klebsiella pneumoniae has emerged as a significant multidrug-resistant pathogen, classified as a critical priority by the World Health Organization. The rising rates of antibiotic resistance have led to increased therapeutic failures, diminishing the effectiveness of existing antibiotics. Consequently, there is an urgent need for alternative treatments to effectively inhibit the growth of K. pneumoniae and mitigate associated diseases. Phytochemicals have demonstrated potential advantages over traditional antibiotics, prompting their exploration as innovative therapeutic agents. This study aimed to identify phytochemicals that can inhibit dapB, a vital enzyme in the lysine biosynthesis pathway of K. pneumoniae, which is essential for protein synthesis and the cross-linking of the bacterial peptidoglycan cell wall. We screened 17,934 phytochemicals based on Lipinski's Rule of Five, along with their Absorption, Distribution, Metabolism, Excretion properties and toxicological parameters. Next, we conducted triplicate docking studies against dapB to evaluate the library further. The most promising molecules then underwent 100 ns Molecular Dynamics simulations in triplicate, followed by MM/PBSA based binding free energy calculations to identify potential dapB inhibitors. This in silico analysis highlighted limonin as a promising inhibitor of dapB in K. pneumoniae. Further experimental validation is crucial to enhance limonin's potential as a novel therapeutic agent against K. pneumoniae-associated diseases.
肺炎克雷伯菌已成为一种重要的多重耐药病原体,被世界卫生组织列为关键优先事项。抗生素耐药率的上升导致治疗失败率增加,现有抗生素的有效性降低。因此,迫切需要替代治疗方法来有效抑制肺炎克雷伯菌的生长并减轻相关疾病。植物化学物质已显示出相对于传统抗生素的潜在优势,促使人们将其作为创新治疗剂进行探索。本研究旨在鉴定能够抑制dapB的植物化学物质,dapB是肺炎克雷伯菌赖氨酸生物合成途径中的一种关键酶,对蛋白质合成和细菌肽聚糖细胞壁的交联至关重要。我们根据Lipinski的五规则筛选了17934种植物化学物质,以及它们的吸收、分布、代谢、排泄特性和毒理学参数。接下来,我们对dapB进行了三次重复对接研究,以进一步评估该文库。然后,最有前景的分子进行了三次重复的100纳秒分子动力学模拟,随后进行基于MM/PBSA的结合自由能计算,以确定潜在的dapB抑制剂。这种计算机模拟分析突出了柠檬苦素作为肺炎克雷伯菌中dapB的一种有前景的抑制剂。进一步的实验验证对于提高柠檬苦素作为抗肺炎克雷伯菌相关疾病的新型治疗剂的潜力至关重要。