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Keto Amphetamine Toxicity—Focus on the Redox Reactivity of the Cathinone Designer Drug Mephedrone

机译:酮类苯丙胺的毒性-着眼于卡西酮设计药物美沙酮的氧化还原反应活性

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摘要

The β-keto amphetamine (cathinone, β-KA) designer drugs such as mephedrone (4-methylmethcathinone, 4-MMC) show a large degree of structural similarity to amphetamines like methamphetamine (METH). However, little is currently known about whether these substances also share the potential neurotoxic properties of their non-keto amphetamine counterparts, or what mechanisms could be involved. Here, we evaluate the cytotoxicity of β-KAs in SH-SY5Y cells using lactate dehydrogenase (LDH) assays, assess the redox potential of a range of β-KAs and non-keto amphetamines using the sensitive redox indicator 2-(4-Iodophenyl)-3-(4-nitrophenyl)-5-(2,4-disulfophenyl)-2H-tetrazolium (WST-1), and explore the effect of 4-MMC on the formation of protein adducts using ultra-high performance liquid chromatography/high-resolution time-of-flight mass spectrometry (UHPLC-HR-TOFMS) and on the mitochondrial respiratory chain using high-resolution respirometry. We show that treatment with β-KAs increases LDH release. Further, we demonstrate that even under physiological pH, β-KAs are effective and selective—as compared with their non-keto analogues—reductants in the presence of electron acceptors. Increased pH (range 7.6–8.0) greatly enhanced the reactivity up to sixfold. We found no evidence of protein adduct formation, suggesting the reactivity is due to direct electron transfer by the β-KAs. Finally, we show that 4-MMC and METH produce dissimilar effects on the respiratory chain. Our results indicate that β-KAs such as 4-MMC possess cytotoxic properties in vitro. Furthermore, in the presence of an electron-accepting redox partner, the ketone moiety of β-KAs is vital for pH-dependent redox reactivity. Further work is needed to establish the importance of β-KA redox properties and its potential toxicological importance in vivo.
机译:β-酮苯丙胺(卡西酮,β-KA)设计药物如甲氧麻黄酮(4-甲基甲卡西酮,4-MMC)与诸如甲基苯丙胺(METH)的苯丙胺显示出很大的结构相似性。但是,目前对于这些物质是否也具有非酮苯丙胺类似物的潜在神经毒性特性或可能涉及的机制知之甚少。在这里,我们使用乳酸脱氢酶(LDH)分析评估SH-SY5Y细胞中β-KA的细胞毒性,使用敏感的氧化还原指示剂2-(4-碘苯基)评估一系列β-KA和非酮类苯丙胺的氧化还原潜力。 )-3-(4-硝基苯基)-5-(2,4-二磺基苯基)-2H-四唑鎓(WST-1),并使用超高效液相色谱法研究4-MMC对蛋白质加合物形成的影响/高分辨率飞行时间质谱(UHPLC-HR-TOFMS)以及使用高分辨率呼​​吸测定法的线粒体呼吸链。我们显示,用β-KAs处理可增加LDH释放。此外,我们证明,即使在生理pH值下,与它们的非酮类似物相比,β-KA在电子受体存在下也是有效和选择性的。 pH值升高(范围7.6–8.0)可将反应性提高多达六倍。我们没有发现蛋白质加合物形成的证据,表明反应性是由于β-KAs直接电子转移引起的。最后,我们表明4-MMC和METH对呼吸链产生不同的影响。我们的结果表明,β-KAs(如4-MMC)在体外具有细胞毒性。此外,在电子接受氧化还原配偶体的存在下,β-KAs的酮部分对于pH依赖的氧化还原反应性至关重要。需要进一步的工作来确定β-KA氧化还原特性的重要性及其在体内的潜在毒理学重要性。

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