首页> 外文期刊>Nucleic Acids Research >A new class of antibacterials, the imidazopyrazinones, reveal structural transitions involved in DNA gyrase poisoning and mechanisms of resistance
【24h】

A new class of antibacterials, the imidazopyrazinones, reveal structural transitions involved in DNA gyrase poisoning and mechanisms of resistance

机译:一类新的抗菌剂,咪唑嗪酮,揭示参与DNA腺苷酸中毒的结构转变和抗性机制

获取原文
获取原文并翻译 | 示例
           

摘要

Imidazopyrazinones (IPYs) are a new class of compounds that target bacterial topoisomerases as a basis for their antibacterial activity. We have characterized the mechanism of these compounds through structural/mechanistic studies showing they bind and stabilize a cleavage complex between DNA gyrase and DNA ('poisoning') in an analogous fashion to fluoroquinolones, but without the requirement for the water-metal-ion bridge. Biochemical experiments and structural studies of cleavage complexes of IPYs compared with an uncleaved gyrase-DNA complex, reveal conformational transitions coupled to DNA cleavage at the DNA gate. These involve movement at the GyrA interface and tilting of the TOPRIM domains toward the scissile phosphate coupled to capture of the catalytic metal ion. Our experiments show that these structural transitions are involved generally in poisoning of gyrase by therapeutic compounds and resemble those undergone by the enzyme during its adenosine triphosphate-coupled strand-passage cycle. In addition to resistance mutations affecting residues that directly interact with the compounds, we characterized a mutant (D82N) that inhibits formation of the cleavage complex by the unpoisoned enzyme. The D82N mutant appears to act by stabilizing the binary conformation of DNA gyrase with uncleaved DNA without direct interaction with the compounds. This provides general in- sight into the resistance mechanisms to antibiotics targeting bacterial type II topoisomerases.
机译:咪唑嗪(Ipys)是一种新类化合物,其靶向细菌拓扑异构酶作为其抗菌活性的基础。我们通过结构/机械研究表征了这些化合物的机制,所述结构/机械研究显示它们以类似的方式与DNA乙基酶和DNA('中毒')之间的裂解复合物稳定为氟代喹啉,但没有水 - 金属离子桥的要求。与未切割的戈萨斯-DNA复合物相比,IPES裂解复合物的生化实验和结构研究,揭示了DNA栅极耦合到DNA切割的构象转变。这些涉及在Gyra界面处的运动,并朝向偶联磷酸酯倾斜TOPRIM结构域,其偶联至催化金属离子捕获。我们的实验表明,这些结构转变通常涉及治疗性化合物的乙酶中毒,并在其腺苷三磷酸偶联链通道循环期间类似于酶的经历。除了影响与化合物直接相互作用的残留物的抗性突变,我们表征了抑制未被掺杂的酶形成切割复合物的突变体(D82N)。 D82N突变体似乎通过稳定DNA乙酶的二元构象与未切割的DNA,而不与化合物直接相互作用。这为抗生素靶向II型拓扑异构酶的抗生素提供了一般的视线。

著录项

  • 来源
    《Nucleic Acids Research》 |2018年第8期|共15页
  • 作者单位

    John Innes Ctr Dept Biol Chem Norwich Res Pk Norwich NR4 7UH Norfolk England;

    John Innes Ctr Dept Biol Chem Norwich Res Pk Norwich NR4 7UH Norfolk England;

    Sanofi R&

    D TSU Infect Dis 1541 Ave Marcel Merieux Marcy Letoile France;

    Sanofi R&

    D TSU Infect Dis 1541 Ave Marcel Merieux Marcy Letoile France;

    GlaxoSmithKline Antibacterial Discovery Performance Unit Infect Dis Therapy Area Unit 1250 Collegeville Rd Collegeville PA 19426 USA;

    Sanofi R&

    D TSU Infect Dis 1541 Ave Marcel Merieux Marcy Letoile France;

    John Innes Ctr Dept Biol Chem Norwich Res Pk Norwich NR4 7UH Norfolk England;

    John Innes Ctr Dept Biol Chem Norwich Res Pk Norwich NR4 7UH Norfolk England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 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