King Abdullah Institute for Nanotechnology, King Saud University, PO Box 2455, Riyadh 11451, Saudi Arabia.
Biochem Biophys Res Commun. 2010 May 28;396(2):578-83. doi: 10.1016/j.bbrc.2010.04.156. Epub 2010 May 4.
Copper oxide nanoparticles (CuO NPs) are increasingly used in various applications. Recent studies suggest that oxidative stress may be the cause of the cytotoxicity of CuO NPs in mammalian cells. However, little is known about the genotoxicity of CuO NPs following exposure to human cells. This study was undertaken to investigate CuO NPs induced genotoxic response through p53 pathway in human pulmonary epithelial cells (A549). In addition, cytotoxicity and oxidative stress markers were also assessed. Results showed that cell viability was reduced by CuO NPs and degree of reduction was dose dependent. CuO NPs were also found to induce oxidative stress in dose-dependent manner indicated by depletion of glutathione and induction of lipid peroxidation, catalase and superoxide dismutase. The expression of Hsp70, the first tier biomarker of cellular damage was induced by CuO NPs. Further, CuO NPs up-regulated the cell cycle checkpoint protein p53 and DNA damage repair proteins Rad51 and MSH2 expression. These results demonstrate that CuO NPs possess a genotoxic potential in A549 cells which may be mediated through oxidative stress. Our short-term exposure study of high level induction of genotoxic response of CuO NPs will need to be further investigated to determine whether long-term exposure consequences may exist for CuO NPs application.
氧化铜纳米颗粒 (CuO NPs) 在各种应用中越来越多地被使用。最近的研究表明,氧化应激可能是 CuO NPs 在哺乳动物细胞中产生细胞毒性的原因。然而,对于人类细胞暴露于 CuO NPs 后的遗传毒性知之甚少。本研究旨在通过 p53 途径研究 CuO NPs 在人肺上皮细胞 (A549) 中引起的遗传毒性反应。此外,还评估了细胞毒性和氧化应激标志物。结果表明,CuO NPs 降低了细胞活力,降低程度呈剂量依赖性。还发现 CuO NPs 以剂量依赖性方式诱导氧化应激,表现为谷胱甘肽耗竭和脂质过氧化、过氧化氢酶和超氧化物歧化酶诱导。CuO NPs 诱导了细胞损伤的第一级生物标志物 Hsp70 的表达。此外,CuO NPs 上调了细胞周期检查点蛋白 p53 以及 DNA 损伤修复蛋白 Rad51 和 MSH2 的表达。这些结果表明,CuO NPs 在 A549 细胞中具有遗传毒性潜力,这可能是通过氧化应激介导的。我们需要进一步研究 CuO NPs 高水平诱导遗传毒性反应的短期暴露研究,以确定长期暴露是否会对 CuO NPs 的应用产生后果。