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Elucidation of the active conformation of vancomycin dimers with antibacterial activity against vancomycin-resistant bacteria

机译:阐明具有抗万古霉素抗性细菌活性的万古霉素二聚体的活性构象

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Covalently linked vancomycin dimers have attracted a great deal of attention among researchers because of their enhanced antibacterial activity against vancomycin-resistant strains. However, the lack of a clear insight into the mechanisms of action of these dimers hampers rational optimization of their antibacterial potency. Here, we describe the synthesis and antibacterial activity of novel vancomycin dimers with a constrained molecular conformation achieved by two tethers between vancomycin units. Conformational restriction is a useful strategy for studying the relationship between the molecular topology and biological activity of compounds. In this study, two vancomycin units were linked at three distinct positions of the glycopeptide (vancosamine residue (V), C terminus (C), and N terminus (N)) to form two types of novel vancomycin cyclic dimers. Active NC-VV-linked dimers with a stable conformation as indicated by molecular mechanics calculations selectively suppressed the peptidoglycan polymerization reaction of vancomycin-resistant Staphylococcus aureus in vitro. In addition, double-disk diffusion tests indicated that the antibacterial activity of these dimers against vancomycin-resistant enterococci might arise from the inhibition of enzymes responsible for peptidoglycan polymerization. These findings provide a new insight into the biological targets of vancomycin dimers and the conformational requirements for efficient antibacterial activity against vancomycin-resistant strains. Squashing superbugs: Conformationally constrained vancomycin dimers that inhibit the peptidoglycan synthesis of vancomycin-resistant bacteria were prepared (see scheme). The potent antibacterial activity of the dimers was suggested to arise from their direct action on transglycosylase enzymes.
机译:共价连接的万古霉素二聚体由于其增强的抗万古霉素菌株的抗菌活性而引起了研究人员的广泛关注。然而,对这些二聚体的作用机理缺乏清楚的认识妨碍了其抗菌效力的合理优化。在这里,我们描述了新型万古霉素二聚体的合成和抑菌活性,该分子具有受万古霉素单元之间的两个连接臂限制的分子构象。构象限制是研究化合物的分子拓扑与生物学活性之间关系的有用策略。在这项研究中,两个万古霉素单元在糖肽的三个不同位置连接(万古胺残基(V),C末端(C)和N末端(N)),形成两种新型的万古霉素环状二聚体。如分子力学计算所示,具有稳定构象的活性NC-VV连接的二聚体选择性抑制了耐万古霉素的金黄色葡萄球菌的肽聚糖聚合反应。此外,双盘扩散试验表明,这些二聚体对耐万古霉素的肠球菌的抗菌活性可能是由于抑制了负责肽聚糖聚合的酶而引起的。这些发现为万古霉素二聚体的生物学目标以及针对耐万古霉素菌株的有效抗菌活性的构象要求提供了新的见解。压扁超级虫:制备了抑制万古霉素抗性细菌的肽聚糖合成的构象受限的万古霉素二聚体(请参阅方案)。据认为,二聚体的强力抗菌活性是由于它们对转糖基酶的直接作用。

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