School of Environmental Science and Engineering, Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, Nanjing University of Information Science and Technology, 210044 Nanjing, China.
School of Environmental Science and Engineering, Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, Nanjing University of Information Science and Technology, 210044 Nanjing, China.
Chemosphere. 2017 Oct;185:681-689. doi: 10.1016/j.chemosphere.2017.07.035. Epub 2017 Jul 8.
Graphene and ionic liquids (ILs) released into the environment will interact with each other. So far however, the risks associated with the concurrent exposure of biota to graphene and ILs in the environment have received little attention. The research reported here focused on observing and predicting the joint toxicity effects in the green alga Scenedesmus obliquus exposed to binary mixtures of intrinsic graphene (iG)/graphene oxide (GO) and five ILs of varying anionic and cationic types. The isolated ILs in the binary mixtures were the main contributors to toxicity. The binary GO-IL mixtures resulted in more severe joint toxicity than the binary iG-IL mixtures, irrespective of mixture ratios. The mechanism of the joint toxicity may be associated with the adsorption capability of the graphenes for the ILs, the dispersion stability of the graphenes in aquatic media, and modulation of the binary mixtures-induced oxidative stress. A toxic unit assessment showed that the graphene and IL toxicities were additive at low concentration of the mixtures but antagonistic at high concentration of the mixtures. Predictions made using the concentration addition and independent action models were close to the observed joint toxicities regardless of mixture types and mixture ratios. These findings provide new insights that are of use in the risk assessment of mixtures of engineered nanoparticles and other environmentally relevant contaminants.
石墨烯和离子液体(ILs)释放到环境中会相互作用。然而,到目前为止,生物同时暴露于环境中的石墨烯和 ILs 所带来的风险还没有得到太多关注。本研究重点观察和预测二元混合物中内禀石墨烯(iG)/氧化石墨烯(GO)和五种不同阴离子和阳离子类型的 IL 对斜生栅藻的联合毒性效应。二元混合物中的单独 IL 是毒性的主要贡献者。无论混合物比例如何,二元 GO-IL 混合物比二元 iG-IL 混合物产生更严重的联合毒性。联合毒性的机制可能与石墨烯对 ILs 的吸附能力、石墨烯在水介质中的分散稳定性以及二元混合物诱导的氧化应激有关。毒性单位评估表明,在混合物的低浓度下,石墨烯和 IL 的毒性是相加的,但在混合物的高浓度下,毒性是拮抗的。无论混合物类型和比例如何,使用浓度加和和独立作用模型进行的预测都接近观察到的联合毒性。这些发现为评估工程纳米颗粒和其他与环境相关的污染物混合物的风险提供了新的见解。