Bulcke Felix, Dringen Ralf
Center for Biomolecular Interactions Bremen, Faculty 2 (Biology/Chemistry), University of Bremen, P.O. Box 330440, 28334, Bremen, Germany.
Neurochem Res. 2015 Jan;40(1):15-26. doi: 10.1007/s11064-014-1458-0. Epub 2014 Oct 26.
Copper oxide nanoparticles (CuO-NPs) are frequently used for industrial or medical applications and are known for their high toxic potential. As little is known so far on the consequences of an exposure of brain cells to such particles, we applied CuO-NPs to cultured primary rat astrocytes and investigated whether such particles affect cell viability and alter their metabolic properties. Astrocytes efficiently accumulated CuO-NPs in a time- and concentration-dependent manner. The cells remained viable during a 24 h incubation with 100 µM copper in the form of CuO-NPs, while higher concentrations of CuO-NPs severely compromised the cell viability. Astrocytes that were exposed for 24 h to 100 µM CuO-NPs showed significantly enhanced extracellular lactate concentrations and increased cellular levels of glutathione and metallothioneins. The CuO-NP-induced increase in lactate release and metallothionein content were prevented by the presence of the membrane-permeable copper chelator tetrathiomolybdate, while this chelator increased already in the absence of CuO-NPs the cellular glutathione content. After removal of the CuO-NPs following a 24 h pre-incubation with 100 µM CuO-NPs, astrocytes maintained during a further 6 h incubation an elevated glycolytic lactate release and exported significantly more glutathione than control cells that had been pre-incubated without CuO-NPs. These data suggest that copper ions which are liberated from internalized CuO-NPs stimulate glycolytic flux as well as the synthesis of glutathione and metallothioneins in cultured viable astrocytes.
氧化铜纳米颗粒(CuO-NPs)常用于工业或医学应用,并且因其具有高毒性潜力而闻名。由于目前对于脑细胞暴露于此类颗粒的后果知之甚少,我们将CuO-NPs应用于原代培养的大鼠星形胶质细胞,并研究此类颗粒是否会影响细胞活力并改变其代谢特性。星形胶质细胞以时间和浓度依赖性方式有效地积累了CuO-NPs。在与100μM以CuO-NPs形式存在的铜孵育24小时期间,细胞保持存活,而更高浓度的CuO-NPs则严重损害了细胞活力。暴露于100μM CuO-NPs 24小时的星形胶质细胞显示细胞外乳酸浓度显著升高,谷胱甘肽和金属硫蛋白的细胞水平增加。膜通透性铜螯合剂四硫代钼酸盐的存在可阻止CuO-NP诱导的乳酸释放增加和金属硫蛋白含量增加,而这种螯合剂在不存在CuO-NPs的情况下已经增加了细胞内谷胱甘肽含量的值。在用100μM CuO-NPs预孵育24小时后去除CuO-NPs后,星形胶质细胞在进一步孵育6小时期间维持较高的糖酵解乳酸释放,并且比未用CuO-NPs预孵育的对照细胞输出显著更多的谷胱甘肽。这些数据表明,从内化的CuO-NPs释放的铜离子刺激培养的存活星形胶质细胞中的糖酵解通量以及谷胱甘肽和金属硫蛋白的合成。