Inhibitors of ROS production by the ubiquinone-binding site of mitochondrial complex I identified by chemical screening.

Free radical biology & medicine Pub Date : 2013-12-01 Epub Date: 2013-08-27 DOI:10.1016/j.freeradbiomed.2013.08.170
Adam L Orr, Deepthi Ashok, Melissa R Sarantos, Tong Shi, Robert E Hughes, Martin D Brand
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引用次数: 68

Abstract

Mitochondrial production of reactive oxygen species is often considered an unavoidable consequence of aerobic metabolism and currently cannot be manipulated without perturbing oxidative phosphorylation. Antioxidants are widely used to suppress effects of reactive oxygen species after formation, but they can never fully prevent immediate effects at the sites of production. To identify site-selective inhibitors of mitochondrial superoxide/H2O2 production that do not interfere with mitochondrial energy metabolism, we developed a robust small-molecule screen and secondary profiling strategy. We describe the discovery and characterization of a compound (N-cyclohexyl-4-(4-nitrophenoxy)benzenesulfonamide; CN-POBS) that selectively inhibits superoxide/H2O2 production from the ubiquinone-binding site of complex I (site I(Q)) with no effects on superoxide/H2O2 production from other sites or on oxidative phosphorylation. Structure/activity studies identified a core structure that is important for potency and selectivity for site I(Q). By employing CN-POBS in mitochondria respiring on NADH-generating substrates, we show that site I(Q) does not produce significant amounts of superoxide/H2O2 during forward electron transport on glutamate plus malate. Our screening platform promises to facilitate further discovery of direct modulators of mitochondrially derived oxidative damage and advance our ability to understand and manipulate mitochondrial reactive oxygen species production under both normal and pathological conditions.

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通过化学筛选鉴定线粒体复合体泛素结合位点产生ROS的抑制剂。
线粒体活性氧的产生通常被认为是有氧代谢不可避免的结果,目前不能在不干扰氧化磷酸化的情况下进行操作。抗氧化剂被广泛用于抑制活性氧形成后的影响,但它们永远不能完全阻止生产现场的直接影响。为了确定不干扰线粒体能量代谢的线粒体超氧化物/H2O2产生的位点选择性抑制剂,我们开发了一个强大的小分子筛选和二次分析策略。我们描述了一种化合物(n -环己基-4-(4-硝基苯氧基)苯磺酰胺的发现和表征;CN-POBS)选择性抑制复合体I的泛素结合位点(位点I(Q))产生超氧化物/H2O2,而不影响其他位点产生超氧化物/H2O2或氧化磷酸化。结构/活性研究确定了一个核心结构,对I(Q)位点的效力和选择性很重要。通过在线粒体中使用CN-POBS对产生nadh的底物进行呼吸,我们发现在谷氨酸和苹果酸盐的正向电子传递过程中,位点I(Q)不会产生大量的超氧化物/H2O2。我们的筛选平台有望促进进一步发现线粒体氧化损伤的直接调节剂,并提高我们在正常和病理条件下理解和操纵线粒体活性氧产生的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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