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铜会干扰硒蛋白的合成和活性。

Copper interferes with selenoprotein synthesis and activity.

机构信息

Department of Molecular Nutritional Physiology, Institute of Nutritional Sciences, Friedrich Schiller University Jena, Jena, 07743, Germany; TraceAge-DFG Research Unit on Interactions of Essential Trace Elements in Healthy and Diseased Elderly, Potsdam-Berlin-Jena, Germany.

Department of Molecular Nutritional Physiology, Institute of Nutritional Sciences, Friedrich Schiller University Jena, Jena, 07743, Germany; TraceAge-DFG Research Unit on Interactions of Essential Trace Elements in Healthy and Diseased Elderly, Potsdam-Berlin-Jena, Germany; German Institute of Human Nutrition, Nuthetal, 14558, Germany.

出版信息

Redox Biol. 2020 Oct;37:101746. doi: 10.1016/j.redox.2020.101746. Epub 2020 Oct 7.

Abstract

Selenium and copper are essential trace elements for humans, needed for the biosynthesis of enzymes contributing to redox homeostasis and redox-dependent signaling pathways. Selenium is incorporated as selenocysteine into the active site of redox-relevant selenoproteins including glutathione peroxidases (GPX) and thioredoxin reductases (TXNRD). Copper-dependent enzymes mediate electron transfer and other redox reactions. As selenoprotein expression can be modulated e.g. by HO, we tested the hypothesis that copper status affects selenoprotein expression. To this end, hepatocarcinoma HepG2 cells and mice were exposed to a variable copper and selenium supply in a physiologically relevant concentration range, and transcript and protein expression as well as GPX and TXNRD activities were compared. Copper suppressed selenoprotein mRNA levels of GPX1 and SELENOW, downregulated GPX and TXNRD activities and decreased UGA recoding efficiency in reporter cells. The interfering effects were successfully suppressed by applying the copper chelators bathocuproinedisulfonic acid or tetrathiomolybdate. In mice, a decreased copper supply moderately decreased the copper status and negatively affected hepatic TXNRD activity. We conclude that there is a hitherto unknown interrelationship between copper and selenium status, and that copper negatively affects selenoprotein expression and activity most probably via limiting UGA recoding. This interference may be of physiological relevance during aging, where a particular shift in the selenium to copper ratio has been reported. An increased concentration of copper in face of a downregulated selenoprotein expression may synergize and negatively affect the cellular redox homeostasis contributing to disease processes.

摘要

硒和铜是人类必需的微量元素,它们参与了许多酶的生物合成,这些酶有助于维持氧化还原平衡和氧化还原依赖的信号通路。硒以硒代半胱氨酸的形式掺入到与氧化还原相关的硒蛋白的活性部位,这些硒蛋白包括谷胱甘肽过氧化物酶(GPX)和硫氧还蛋白还原酶(TXNRD)。铜依赖性酶介导电子转移和其他氧化还原反应。由于硒蛋白的表达可以被 HO 等因素调节,我们假设铜的状态会影响硒蛋白的表达。为此,我们在生理相关的浓度范围内,用可变的铜和硒供应来处理肝癌 HepG2 细胞和小鼠,并比较了转录物和蛋白质表达以及 GPX 和 TXNRD 活性。铜抑制了 GPX1 和 SELENOW 的硒蛋白 mRNA 水平,下调了 GPX 和 TXNRD 的活性,并降低了报告细胞中 UGA 重编码的效率。通过应用铜螯合剂 bathocuproinedisulfonic acid 或 tetrathiomolybdate,可以成功抑制这些干扰作用。在小鼠中,铜供应减少会适度降低铜状态,并对肝脏 TXNRD 活性产生负面影响。我们得出结论,铜和硒状态之间存在着以前未知的相互关系,铜可能通过限制 UGA 重编码来负调控硒蛋白的表达和活性。在衰老过程中,硒与铜的比例发生了特定的变化,这种干扰可能具有生理相关性。在面对下调的硒蛋白表达时,铜浓度的增加可能会协同作用并负性影响细胞的氧化还原平衡,从而导致疾病进程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f132/7567034/a5d29e9e8b6a/fx1.jpg

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