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Elucidation of the Active Conformation of Vancomycin Dimers with Antibacterial Activity against Vancomycin‐Resistant Bacteria
Authors:Dr. Jun Nakamura  Hidenori Yamashiro  Sayaka Hayashi  Mami Yamamoto  Kenji Miura  Dr. Shu Xu  Prof. Dr. Takayuki Doi  Dr. Hideki Maki  Osamu Yoshida  Prof. Dr. Hirokazu Arimoto
Affiliation:1. Graduate School of Life Sciences, Tohoku University, 2‐1‐1 Katahira, Aoba‐ku, Sendai 980‐8577 (Japan), Fax: (+81)?0‐22‐217‐6204;2. Discovery Research Laboratories, Shionogi & Co., Ltd., 3‐1‐1 Futaba‐cho, Toyonaka, Osaka 561‐0825 (Japan);3. Graduate School of Pharmaceutical Sciences, Tohoku University, 6‐3 Aza‐aoba, Aramaki, Aoba‐ku, Sendai 980‐8578 (Japan)
Abstract: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.
Keywords:antibiotics  conformational restriction  dimers  structure–  activity relationships  vancomycin
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