Institute of Chemical Biology and Nanomedicine, State Key Laboratory of Chemo/Biosensing and Chemometrics, Hunan Provincial Key Laboratory of Biomacromolecular Chemical Biology, and School of Chemistry and Chemical Engineering, Hunan University, Changsha, Hunan 410082, China.
School of Physics, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.
J Am Chem Soc. 2022 Jun 15;144(23):10622-10639. doi: 10.1021/jacs.2c03784. Epub 2022 Jun 3.
Gram-negative bacteria, especially the ones with multidrug resistance, post dire challenges to antibiotic treatments due to the presence of the outer membrane (OM), which blocks the entry of many antibiotics. Current solutions for such permeability issues, namely lipophilic-cationic derivatization of antibiotics and sensitization with membrane-active agents, cannot effectively potentiate the large, globular, and hydrophilic antibiotics such as vancomycin, due to ineffective disruption of the OM. Here, we present our solution for high-degree OM binding of vancomycin via a hybrid "derivatization-for-sensitization" approach, which features a combination of LPS-targeting lipo-cationic modifications on vancomycin and OM disruption activity from a sensitizing adjuvant. 10- to 10-fold potentiation of vancomycin and 20-fold increase of the sensitizer's effectiveness were achieved with a combination of a vancomycin derivative and its sensitizer. Such potentiation is the result of direct membrane lysis through cooperative membrane binding for the sensitizer-antibiotic complex, which strongly promotes the uptake of vancomycin and adds to the extensive antiresistance effectiveness. The potential of such derivatization-for-sensitization approach was also supported by the combination's potent antimicrobial efficacy in mouse model studies, and the expanded application of such strategy on other antibiotics and sensitizer structures.
革兰氏阴性菌,特别是那些具有多重耐药性的细菌,由于其外膜(OM)的存在,给抗生素治疗带来了严峻的挑战,因为外膜阻止了许多抗生素的进入。目前针对这种通透性问题的解决方案,即抗生素的亲脂性阳离子衍生化和膜活性剂的敏化作用,由于无法有效破坏 OM,因此不能有效地增强万古霉素等大型、球形和亲水性抗生素的作用。在这里,我们通过一种混合的“衍生化-敏化”方法来解决万古霉素与 OM 高度结合的问题,该方法的特点是在万古霉素上进行靶向脂多糖的亲脂性阳离子修饰,并结合敏化佐剂的 OM 破坏活性。通过万古霉素衍生物及其敏化剂的组合,可以实现万古霉素的 10-100 倍增效,敏化剂的有效性提高 20 倍。这种增效作用是敏化剂-抗生素复合物通过协同膜结合直接导致膜裂解的结果,这强烈促进了万古霉素的摄取,并增加了广泛的抗耐药性效果。这种衍生化-敏化方法的潜力还得到了在小鼠模型研究中该组合强大的抗菌疗效的支持,以及该策略在其他抗生素和敏化剂结构上的扩展应用。