首页> 外文期刊>The Journal of Antibiotics: An International Journal >A quinolinol-based small molecule with anti-MRSA activity that targets bacterial membrane and promotes fermentative metabolism
【24h】

A quinolinol-based small molecule with anti-MRSA activity that targets bacterial membrane and promotes fermentative metabolism

机译:基于喹啉基的小分子,具有抗MRSA活性,靶向细菌膜并促进发酵代谢

获取原文
获取原文并翻译 | 示例
           

摘要

In a loss-of-viability screen of small molecules against methicillin-resistant Staphylococcus aureus (MRSA) USA300, we found a small molecule, designated DNAC-2, which has an MIC of 8 mu g m1(-1). DNAC-2 is a quinolinol derivative that is bactericidal at 2X MIC. Macromolecular synthesis assays at 2x MIC of DNAC-2 revealed inhibition of DNA, cell wall, RNA and protein synthesis within fifteen to thirty minutes of treatment when compared to the untreated control. Transmission electron microscopy of DNAC-2-treated cells revealed a significantly thicker cell wall and impaired daughter cell separation. Exposure of USA300 cells to 1 x MIC of DNAC-2 resulted in mislocalization of PBP2 away from the septum in an FtsZ-independent manner. In addition, membrane localization with FM4-64, as well as depolarization study with DiOC(2) and lipophilic cation TPP+ displayed membrane irregularities and rapid membrane depolarization, respectively, in DNAC-2-treated cells vs-untreated control. However, DNAC-2 exhibited almost no toxicity toward eukaryotic membranes. Notably, DNAC-2 drives energy generation toward substrate level phosphorylation and the bacteria become more sensitive to DNAC-2 under anaerobic conditions. We propose that DNAC-2 affects USA300 by targeting the membrane, leading to partial membrane depolarization and subsequently affecting aerobic respiration and energy-dependent functional organization of macromolecular biosynthetic pathways. The multiple effects may have the desirable consequence of limiting the emergence of resistance to DNAC-2.
机译:在针对甲氧西林金黄色葡萄球菌(MRSA)USA300的小分子的活力筛选中,我们发现了一个小分子,命名为DNAC-2,其具有8μgm1(-1)的MIC。 DNAC-2是喹啉酚衍生物,其在2x MIC处被杀菌。与未处理的对照相比,DNAC-2的2倍MIC的大分子合成测定显示在15至30分钟的处理中的DNA,细胞壁,RNA和蛋白质合成的抑制。 DNAC-2处理细胞的透射电子显微镜显示出明显较厚的细胞壁和子细胞分离受损。 USA300细胞暴露于DNAC-2的1×MIC导致PBP2以FTSZ无关的方式远离隔膜的错误分析。此外,膜定位与FM4-64,以及DNAC-2处理细胞的DNAC-2处理细胞的DIOC(2)和亲脂性阳离子TPP +显示膜脱极性和快速膜去极化的去极化研究。然而,DNAC-2几乎没有对真核膜的毒性。值得注意的是,DNAC-2将能量发电朝向底物水平磷酸化,细菌在厌氧条件下对DNAC-2更敏感。我们提出DNAC-2通过靶向膜来影响USA300,导致部分膜去极化,随后影响大分子生物合成途径的有氧呼吸和能量依赖性功能组织。多种效应可能具有限制抗DNAC-2的抗性的所需结果。

著录项

  • 来源
  • 作者单位

    Geisel Sch Med Dartmouth Dept Microbiol &

    Immunol Vail 210 Hanover NH 03755 USA;

    Dartmouth Coll Dept Chem Hanover NH 03755 USA;

    Univ Nova Lisboa Inst Tecnol Quim &

    Biol Bacterial Cell Biol Lab Ave Republ EAN Oeiras Portugal;

    Univ Bonn Inst Med Microbiol Immunol &

    Parasitol Pharmaceut Microbiol Sect Bonn Germany;

    Univ Nova Lisboa Inst Tecnol Quim &

    Biol Bacterial Cell Biol Lab Ave Republ EAN Oeiras Portugal;

    Univ Bonn Inst Med Microbiol Immunol &

    Parasitol Pharmaceut Microbiol Sect Bonn Germany;

    Dartmouth Coll Dept Chem Hanover NH 03755 USA;

    Geisel Sch Med Dartmouth Dept Microbiol &

    Immunol Vail 210 Hanover NH 03755 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 药学;
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号