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铜(II)-双(硫代半卡巴腙)配合物对呼吸链复合体I的抑制作用

Inhibition of respiratory complex I by copper(ii)-bis(thiosemicarbazonato) complexes.

作者信息

Djoko Karrera Y, Donnelly Paul S, McEwan Alastair G

机构信息

School of Chemistry and Molecular Biosciences, The University of Queensland, St Lucia, QLD 4072, Australia.

出版信息

Metallomics. 2014 Dec;6(12):2250-9. doi: 10.1039/c4mt00226a. Epub 2014 Nov 4.

Abstract

Several copper(ii) complexes of bis(thiosemicarbazones) [Cu(btsc)s] show promise as therapeutics for the treatment of neurological diseases, cancers and bacterial infections. These complexes are thought to act primarily as copper ionophores or "copper boosting" agents, whereby the Cu(II) centre is reduced by cytosolic reductants and Cu(I) is released as "free" or "bioavailable" ion. It is then assumed that the dissociated Cu(I) ion is the species responsible for many of the observed biological effects of Cu(btsc)s. We recently showed that Cu(btsc) complexes inhibited NADH dehydrogenases in the bacterial respiratory chain. In this work, we demonstrate that Cu(btsc) complexes also inhibit mitochondrial respiration and that Complex I in the mitochondrial electron transport chain is a specific target of inhibition. However, bioavailable Cu ions do not appear to contribute to the action of Cu(btsc) as a respiratory inhibitor. Instead, an intact Cu(btsc) molecule may bind reversibly and competitively to the site of ubiquinone binding in Complex I. Our results add to the growing body of evidence that the intact complex may be important in the overall cellular activity of Cu(btsc) complexes and further the understanding of their biological effects as a potential therapeutic.

摘要

几种双(硫代半卡巴腙)铜(II)配合物[Cu(btsc)s]有望成为治疗神经疾病、癌症和细菌感染的药物。这些配合物被认为主要作为铜离子载体或“铜增强”剂起作用,即Cu(II)中心被胞质还原剂还原,Cu(I)作为“游离”或“生物可利用”离子释放出来。然后推测解离的Cu(I)离子是导致观察到的Cu(btsc)s许多生物学效应的物质。我们最近表明,Cu(btsc)配合物抑制细菌呼吸链中的NADH脱氢酶。在这项工作中,我们证明Cu(btsc)配合物也抑制线粒体呼吸,并且线粒体电子传递链中的复合体I是抑制的特定靶点。然而,生物可利用的铜离子似乎对Cu(btsc)作为呼吸抑制剂的作用没有贡献。相反,完整的Cu(btsc)分子可能与复合体I中泛醌结合位点可逆且竞争性地结合。我们的结果进一步证明,完整的配合物可能在Cu(btsc)配合物的整体细胞活性中起重要作用,并有助于进一步理解它们作为潜在治疗药物的生物学效应。

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