Copper induces neuron‐sparing, ferredoxin 1‐independent astrocyte toxicity mediated by oxidative stress

毒性 氧化应激 星形胶质细胞 程序性细胞死亡 生物 细胞生物学 神经元 生物化学 细胞凋亡 神经科学 化学 中枢神经系统 有机化学
作者
Jenna R. Gale,Karen A. Hartnett-Scott,Madeline M. Ross,Paul A. Rosenberg,Elias Aizenman
出处
期刊:Journal of Neurochemistry [Wiley]
卷期号:167 (2): 277-295 被引量:1
标识
DOI:10.1111/jnc.15961
摘要

Abstract Copper is an essential enzyme cofactor in oxidative metabolism, anti‐oxidant defenses, and neurotransmitter synthesis. However, intracellular copper, when improperly buffered, can also lead to cell death. Given the growing interest in the use of copper in the presence of the ionophore elesclomol (CuES) for the treatment of gliomas, we investigated the effect of this compound on the surround parenchyma—namely neurons and astrocytes in vitro. Here, we show that astrocytes were highly sensitive to CuES toxicity while neurons were surprisingly resistant, a vulnerability profile that is opposite of what has been described for zinc and other toxins. Bolstering these findings, a human astrocytic cell line was similarly sensitive to CuES. Modifications of cellular metabolic pathways implicated in cuproptosis, a form of copper‐regulated cell death, such as inhibition of mitochondrial respiration or knock‐down of ferredoxin 1 (FDX1), did not block CuES toxicity to astrocytes. CuES toxicity was also unaffected by inhibitors of apoptosis, necrosis or ferroptosis. However, we did detect the presence of lipid peroxidation products in CuES‐treated astrocytes, indicating that oxidative stress is a mediator of CuES‐induced glial toxicity. Indeed, treatment with anti‐oxidants mitigated CuES‐induced cell death in astrocytes indicating that oxidative stress is a mediator of CuES‐induced glial toxicity. Lastly, prior induction of metallothioneins 1 and 2 in astrocytes with zinc plus pyrithione was strikingly protective against CuES toxicity. As neurons express high levels of metallothioneins basally, these results may partially account for their resistance to CuES toxicity. These results demonstrate a unique toxic response to copper in glial cells which contrasts with the cell selectivity profile of zinc, another biologically relevant metal. image
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