Zhang Weicheng, Bao Shaopan, Fang Tao
Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
Graduate University of Chinese Academy of Sciences, Beijing 100049, China.
Sci Rep. 2016 Apr 20;6:24839. doi: 10.1038/srep24839.
Nanoparticles (NPs) with unique physicochemical properties induce nano-specific (excess) toxicity in organisms compared with their bulk counterparts. Evaluation and consideration of nano-specific toxicity are meaningful for the safe design and environmental risk assessment of NPs. However, ZnO NPs have been reported to lack excess toxicity for diverse organisms. In the present study, the nano-specific toxicity of ZnO NPs was evaluated in the yeast Saccharomyces cerevisiae. Nano-specific toxicity of ZnO NPs was not observed in the wild type yeast. However, the ZnO NPs induced very similar nano-specific toxicities in the three mutants with comparable log Te ((particle)) values (0.64 vs 0.65 vs 0.62), suggesting that the mutants were more sensitive and specific for the NPs' nano-specific toxicity. The toxic effects in the yeast were slightly attributable to dissolved zinc ions from the ZnO (nano or bulk) particles. Oxidative damage and mechanical damage contributed to the toxic effect of the ZnO particles. The mechanism of mechanical damage is proposed to be an inherent characteristic underlying the nano-specific toxicity in the mutants. The log Te ((particle)) was a useful parameter for evaluation of NPs nano-specific toxicity, whereas log Te ((ion)) efficiently determined the NPs toxicity associated with released ions.
与块状材料相比,具有独特物理化学性质的纳米颗粒(NPs)会在生物体中诱导纳米特异性(过量)毒性。评估和考虑纳米特异性毒性对于NPs的安全设计和环境风险评估具有重要意义。然而,据报道,ZnO NPs对多种生物体缺乏过量毒性。在本研究中,我们在酿酒酵母中评估了ZnO NPs的纳米特异性毒性。在野生型酵母中未观察到ZnO NPs的纳米特异性毒性。然而,ZnO NPs在三个具有可比的对数Te((颗粒))值(0.64对0.65对0.62)的突变体中诱导了非常相似的纳米特异性毒性,这表明这些突变体对NPs的纳米特异性毒性更敏感且更具特异性。酵母中的毒性作用在一定程度上归因于来自ZnO(纳米或块状)颗粒的溶解锌离子。氧化损伤和机械损伤促成了ZnO颗粒的毒性作用。机械损伤的机制被认为是突变体中纳米特异性毒性的内在特征。对数Te((颗粒))是评估NPs纳米特异性毒性的有用参数,而对数Te((离子))有效地确定了与释放离子相关的NPs毒性。