抗霉菌药物作为抑制铜绿假单胞菌毒性因子和对抗抗生素耐药性的新策略:分子模拟研究

R. Anwer
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引用次数: 0

摘要

抗菌素耐药性构成了严重威胁,尤其是在发展中国家,药物的随时供应和消费量的增加导致抗生素使用不当,从而造成耐药性水平比发达地区激增。尽管抗生素在过去取得了成功,但其有效性会随着经常使用而降低,从而对医疗效果构成重大威胁。铜绿假单胞菌是一种机会性病原体,会引发各种与感染有关的问题,包括慢性伤口、烧伤、囊性纤维化的呼吸道问题和角膜感染等。针对铜绿假单胞菌的法定量传感(QS)是抗击该细菌感染的一种战略方法。本研究的目的是检查抗霉菌药物对铜绿假单胞菌体内潜在 QS 靶点的影响,并确定主要候选靶点。首先考察了抗霉菌药物的毒理学和药代动力学特征。通过分子对接虚拟筛选,delamanid 和 pretomanid 成为主要候选药物。经测定,delamanid 和 pretomanid 与 LasR 的结合能分别为 -8.3 和 -10.9 kcal/mol。通过分子动力学模拟对先导化合物复合物进行了详细分析。分子模拟数据验证了先导药物与靶蛋白(PqsR、LasI 和 LasA)在生理环境中的持续相互作用。在命中的抗霉菌药物存在时,蛋白质二级结构的变化可以忽略不计,这进一步增强了复合物的稳定性。这些发现凸显了delamanid和pretomanid的潜在再利用价值,特别是在针对铜绿假单胞菌的法定人数感应机制方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antimycobacterial Drugs as a Novel Strategy to Inhibit Pseudomonas aeruginosa Virulence Factors and Combat Antibiotic Resistance: A Molecular Simulation Study
Antimicrobial resistance poses a severe threat, particularly in developing countries where the ready availability of drugs and increased consumption lead to improper antibiotic usage, thereby causing a surge in resistance levels compared to developed areas. Despite the past success of antibiotics, their effectiveness diminishes with regular use, posing a significant threat to medical efficacy. Pseudomonas aeruginosa, an opportunistic pathogen, triggers various infection-related issues, occurring on occasions including chronic wounds, burn injuries, respiratory problems in cystic fibrosis, and corneal infections. Targeting the quorum sensing (QS) of P. aeruginosa emerges as a strategic approach to combat infections caused by this bacterium. The objective of this study was to check the effect of antimycobacterial drugs against the potential QS targets in P. aeruginosa and identify lead candidates. The antimycobacterial drugs were first examined for the toxicological and pharmacokinetic profile. By virtual screening through molecular docking, delamanid and pretomanid stood out as major candidates. The binding energies of delamanid and pretomanid with LasR were determined to be −8.3 and −10.9 kcal/mol, respectively. The detailed analysis of the complexes of lead compounds were examined through molecular dynamics simulations. The molecular simulations data validated a sustained interaction of lead drugs with target proteins (PqsR, LasI, and LasA) in a physiological environment. The negligible changes in the secondary structure of proteins in presence of hit antimycobacterial drugs further strengthened the stability of the complexes. These findings highlight the potential repurposing of delamanid and pretomanid, specifically in targeting P. aeruginosa quorum-sensing mechanisms.
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