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Critical role of cellular glutathione homeostasis for trivalent inorganic arsenite-induced oxidative damage in human bronchial epithelial cells

机译:细胞谷胱甘肽稳态对三价无机砷诱导的人支气管上皮细胞氧化损伤的关键作用

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摘要

Trivalent inorganic arsenic (iAs3+) is a powerful carcinogen that enhances the risk of lung cancer. Paradoxically, iAs3+ also shows substantial efficacy in the treatment of lung tumors. However, the exact molecular mechanisms underlying iAs3+-induced toxicity and therapeutic effect in lung remain unclear. In this study, the effects of iAs3+, sodium arsenite (NaAsCb) and arsenic trioxide (AS2O3), on cell viability, apoptosis, genotoxicity and oxidative stress in cultured human bronchial epithelial cells were observed. Our results showed that NaAsCh and AS2O3 exposure could result in defects in cell proliferation and greatly enhance the level of oxidative damage. To clarify the critical role of glutathione (GSH) homeostasis in oxidative damage induced by iAs3+, we further measured the content of GSH, ratio of GSH to GSSG, and the activities of GSH-related enzymes involved in the process of GSH synthesis, recycling and utilization. Our data demonstrated that NaAsO2 and AS2O3 disrupted the balance of GSH homeostasis, and NaAsO2- and As2O3-induced oxidative damage was closely associated with the imbalance in GSH synthesis, recycling and utilization. To better understand the physiologic significance of Nrf2 in maintaining GSH-homeostasis, the expression level of Nrf2 was measured after iAs3+ exposure. We found that the protein expression levels of Nrf2 were increased in both NaAsO2- and As2O3-treated cells. Collectively, our findings suggest that disturbed Nrf2-regulated GSH-homeostasis is associated with the oxidative damage triggered by iAs3+, and loss of GSH homeostasis might implicate in both the pathogenesis of iAs3+-induced lung diseases and anticancer activity of iAs3+.
机译:三价无机砷(iAs3 +)是一种强大的致癌物,可增加患肺癌的风险。矛盾的是,iAs3 +在治疗肺部肿瘤方面也显示出实质性功效。但是,尚不清楚iAs3 +诱导的毒性和对肺的治疗作用的确切分子机制。在这项研究中,观察到iAs3 +,亚砷酸钠(NaAsCb)和三氧化二砷(AS2O3)对培养的人支气管上皮细胞的细胞活力,细胞凋亡,遗传毒性和氧化应激的影响。我们的结果表明,NaAsCh和AS2O3暴露可能导致细胞增殖缺陷,并大大提高氧化损伤的水平。为了阐明谷胱甘肽(GSH)稳态在iAs3 +诱导的氧化损伤中的关键作用,我们进一步测量了GSH的含量,GSH与GSSG的比例以及GSH合成,回收和利用过程中涉及的GSH相关酶的活性。利用率。我们的数据表明,NaAsO2和AS2O3破坏了GSH稳态的平衡,而NaAsO2-和As2O3引起的氧化损伤与GSH合成,再循环和利用的不平衡密切相关。为了更好地了解Nrf2在维持GSH稳态中的生理意义,在iAs3 +暴露后测量Nrf2的表达水平。我们发现在NaAsO2-和As2O3处理的细胞中Nrf2的蛋白质表达水平均增加。总的来说,我们的研究结果表明,Nrf2调节的GSH稳态失调与iAs3 +触发的氧化损伤有关,GSH稳态的丧失可能与iAs3 +诱导的肺部疾病的发病机制和iAs3 +的抗癌活性有关。

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