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2-Mercapto-Quinazolinones as Inhibitors of Type II NADH Dehydrogenase and Mycobacterium tuberculosis: Structure–Activity Relationships Mechanism of Action andAbsorption Distribution Metabolism and Excretion Characterization

机译:2-巯基喹唑啉酮类II型NADH脱氢酶和结核分枝杆菌的抑制剂:结构-活性关系作用机理和吸收分布代谢和排泄特性

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摘要

Mycobacterium tuberculosis (MTb) possesses two nonproton pumping type II NADH dehydrogenase (NDH-2) enzymes which are predicted to be jointly essential for respiratory metabolism. Furthermore, the structure of a closely related bacterial NDH-2 has been reported recently, allowing for the structure-based design of small-molecule inhibitors. Herein, we disclose MTb whole-cell structure–activity relationships (SARs) for a series of 2-mercapto-quinazolinones which target the ndh encoded NDH-2 with nanomolar potencies. The compounds were inactivated by glutathione-dependent adduct formation as well as quinazolinone oxidation in microsomes. Pharmacokinetic studies demonstrated modest bioavailability and compound exposures. Resistance to the compounds in MTb was conferred by promoter mutations in the alternative nonessential NDH-2 encoded by ndhA in MTb. Bioenergetic analyses revealed a decrease in oxygen consumption rates in response to inhibitor in cells in which membrane potential was uncoupled from ATP production, while inverted membrane vesicles showed mercapto-quinazolinone-dependent inhibition of ATP production when NADH was the electron donor to the respiratory chain. Enzyme kinetic studies further demonstrated noncompetitive inhibition, suggesting binding of this scaffold to an allosteric site. In summary, while the initial MTb SAR showed limited improvement in potency, these results, combined with structural information on the bacterial protein, will aid in the future discovery of new and improved NDH-2 inhibitors.
机译:结核分枝杆菌(MTb)拥有两种非质子泵浦的II型NADH脱氢酶(NDH-2)酶,它们被认为对呼吸代谢具有共同的作用。此外,近来已经报道了紧密相关的细菌NDH-2的结构,从而允许基于结构的小分子抑制剂的设计。在这里,我们公开了一系列针对2-巯基-喹唑啉酮的MTb全细胞结构-活性关系(SAR),这些巯基靶向具有纳摩尔浓度的ndh编码的NDH-2。谷胱甘肽依赖性加合物的形成以及微粒体中喹唑啉酮的氧化作用使化合物失活。药代动力学研究表明适度的生物利用度和化合物暴露。对MTb中化合物的抗性是由MTb中ndhA编码的另一种非必需NDH-2中的启动子突变赋予的。生物能分析表明,在膜电位与ATP产生不相关的细胞中,对抑制剂的反应使耗氧率降低,而当NADH是呼吸链的电子供体时,倒置的膜囊泡则显示出巯基-喹唑啉酮对ATP产生抑制作用。酶动力学研究进一步证实了非竞争性抑制,表明该支架与变构位点结合。总而言之,尽管最初的MTb SAR在效力方面的改善有限,但这些结果与细菌蛋白的结构信息相结合,将有助于未来发现新的和改良的NDH-2抑制剂。

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