LEPABE-Laboratory for Process Engineering, Environment, Biotechnology and Energy, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, s/n, 4200-465 Porto, Portugal.
ALiCE-Associate Laboratory in Chemical Engineering, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal.
Int J Mol Sci. 2023 Dec 29;25(1):504. doi: 10.3390/ijms25010504.
Antibacterial resistance poses a critical public health threat, challenging the prevention and treatment of bacterial infections. The search for innovative antibacterial agents has spurred significant interest in quaternary heteronium salts (QHSs), such as quaternary ammonium and phosphonium compounds as potential candidates. In this study, a library of 49 structurally related QHSs was synthesized, varying the cation type and alkyl chain length. Their antibacterial activities against , including antibiotic-resistant strains, were evaluated by determining minimum inhibitory/bactericidal concentrations (MIC/MBC) ≤ 64 µg/mL. Structure-activity relationship analyses highlighted alkyl-triphenylphosphonium and alkyl-methylimidazolium salts as the most effective against CECT 976. The length of the alkyl side chain significantly influenced the antibacterial activity, with optimal chain lengths observed between C and C. Dose-response relationships were assessed for selected QHSs, showing dose-dependent antibacterial activity following a non-linear pattern. Survival curves indicated effective eradication of CECT 976 by QHSs at low concentrations, particularly compounds , , and . Moreover, in vitro human cellular data indicated that compounds , , and showed favourable safety profiles at concentrations ≤ 2 µg/mL. These findings highlight the potential of these QHSs as effective agents against susceptible and resistant bacterial strains, providing valuable insights for the rational design of bioactive QHSs.
抗菌耐药性对公共健康构成重大威胁,挑战了细菌感染的预防和治疗。寻找创新的抗菌剂激发了人们对季铵盐和季鏻盐等季杂环盐(QHSs)的极大兴趣,认为它们是有潜力的候选药物。在这项研究中,合成了 49 种结构相关的 QHS 库,改变了阳离子类型和烷基链长度。通过测定最低抑菌/杀菌浓度(MIC/MBC)≤64µg/mL,评估了它们对 包括耐药菌株在内的 的抗菌活性。构效关系分析突出了烷基三苯基膦盐和烷基甲基咪唑盐对 CECT 976 的抗菌活性最强。烷基侧链的长度显著影响抗菌活性,最佳链长在 C 和 C 之间。对选定的 QHS 进行了剂量反应关系评估,结果表明其具有非线性模式的剂量依赖性抗菌活性。存活曲线表明,QHSs 在低浓度下可有效消除 CECT 976,特别是化合物 、 和 。此外,体外人类细胞数据表明,浓度≤2µg/mL 时,化合物 、 和 具有良好的安全性。这些发现突显了这些 QHSs 作为针对敏感和耐药细菌菌株的有效药物的潜力,为合理设计生物活性 QHSs 提供了有价值的见解。