Centre for Drug Research, Universiti Sains Malaysia, USM, Pulau Pinang, Malaysia.
Department of Chemistry and Industrial Chemistry, Kwara State University, Ilorin, Nigeria.
J Biomol Struct Dyn. 2023 Nov;41(19):10096-10116. doi: 10.1080/07391102.2022.2153168. Epub 2022 Dec 7.
Antibiotic resistance (AR) remains one of the leading global health challenges, mostly implicated in disease-related deaths. The -producing metallo-β-lactamases (MBLs) are critically involved in AR pathogenesis through Zn-dependent catalytic destruction of β-lactam antibiotics, yet with limited successful clinical inhibitors. The efficacy of relevant broad-spectrum β-lactams including imipenem and meropenem are seriously challenged by their susceptibility to the Zn-dependent carbapenemase hydrolysis, as such, searching for alternatives remains imperative. In this study, computational molecular modelling and virtual screening methods were extensively applied to identify new putative Zn-sensitive broad-spectrum inhibitors of MBLs, specifically imipenemase-1 (IMP-1) from the IBScreen database. Three ligands, , and selectively displayed stronger binding interactions with the enzymes compared to reference inhibitors, and . For instance, the ligands showed molecular docking scores of -9.450, -8.005 and -10.159 kcal/mol, and MM-GBSA values of -40.404, -31.902 and -33.680 kcal/mol respectively against the IMP-1. Whereas, and showed docking scores of -9.038 and -10.875 kcal/mol, and MM-GBSA of -31.184 and -32.330 kcal/mol respectively against the enzyme. The ligands demonstrated good thermodynamic stability and compactness in complexes with IMP-1 throughout the 100 ns molecular dynamics (MD) trajectories. Interestingly, their binding affinities and stabilities were significantly affected in contacts with the remodelled Zn-deficient IMP-1, indicating sensitivity to the carbapenemase active Zn site, however, with non-β-lactam scaffolds, tenable to resist catalytic hydrolysis. They displayed ideal drug-like ADMET properties, thus, representing putative Zn-sensitive non-β-lactam inhibitors of IMP-1 amenable for further experimental studies.
抗生素耐药性(AR)仍然是全球主要的健康挑战之一,主要与疾病相关的死亡有关。产生的金属β-内酰胺酶(MBLs)通过 Zn 依赖性催化破坏β-内酰胺抗生素在 AR 发病机制中起关键作用,但临床有效的抑制剂有限。相关广谱β-内酰胺类药物(包括亚胺培南和美罗培南)的疗效受到 Zn 依赖性碳青霉烯酶水解的严重挑战,因此,寻找替代品仍然迫在眉睫。在这项研究中,我们广泛应用计算分子建模和虚拟筛选方法来鉴定新型潜在 Zn 敏感的 MBLs 广谱抑制剂,特别是来自 IBScreen 数据库的亚胺培南酶-1(IMP-1)。与参考抑制剂和相比,三种配体、、选择性地显示出与酶更强的结合相互作用。例如,这些配体对 IMP-1 的分子对接评分分别为-9.450、-8.005 和-10.159 kcal/mol,MM-GBSA 值分别为-40.404、-31.902 和-33.680 kcal/mol。而和的对接评分分别为-9.038 和-10.875 kcal/mol,MM-GBSA 值分别为-31.184 和-32.330 kcal/mol。在整个 100 ns 的分子动力学(MD)轨迹中,配体与 IMP-1 形成复合物时表现出良好的热力学稳定性和紧凑性。有趣的是,它们的结合亲和力和稳定性在与重塑的 Zn 缺乏 IMP-1 的接触中受到显著影响,表明对碳青霉烯酶活性 Zn 位点的敏感性,但由于具有非β-内酰胺骨架,能够抵抗催化水解。它们表现出理想的药物样 ADMET 性质,因此,代表具有潜在 Zn 敏感性的非β-内酰胺类 IMP-1 抑制剂,适合进一步的实验研究。