Centre for Nanobiotechnology, Vellore Institute of Technology (VIT), Vellore, India.
Wolfson Nanomaterials & Devices Laboratory, School of Computing, Electronics and Mathematics, Faculty of Science & Engineering, University of Plymouth, Devon, UK.
Sci Total Environ. 2022 Mar 15;812:152241. doi: 10.1016/j.scitotenv.2021.152241. Epub 2021 Dec 16.
Increasing usage of both nanomaterials and pharmaceuticals and their unabated release to the marine ecosystem pose a serious concern nowadays. The toxicity of the mixture of TiO NPs and tetracycline (TC) in the marine species are not very well covered in prior literature. The current study explores the joint toxic effects of TiO NPs and TC in a simulated marine food chain: Chlorella sp. and Artemia salina. Chlorella sp. was interacted with pristine TiO NPs (0.05, 05, and 5 mg/L), TC (0.5 mg/L), and their combinations for 48 h. The toxicity induced in Chlorella sp. by pristine TiO NPs through oxidative stress and chloroplast damage was not significantly changed in the presence of TC. Principal component analysis for the toxicity parameters revealed a strong association between growth inhibition and adsorption/internalization. In the second trophic level (A. salina), the waterborne exposure of TC additively increased the toxicity of TiO NPs. Both adsorption and degradation played a major role in the removal of TC from the suspension, resulting in additive toxic effects in both Chlorella sp. and A. salina. Compared to the waterborne exposure, the foodborne exposure of TiO NPs and TC induced lesser toxic effects owing to reduced uptake and accumulation in A. salina. Biomagnification results indicate that the dietary transfer of TiO NPs and TC does not pose a serious environmental threat in this two-level marine food chain.
如今,纳米材料和药品的使用日益增多,且它们源源不断地释放到海洋生态系统中,这引起了人们的严重关注。先前的文献中并没有很好地涵盖 TiO NPs 和四环素(TC)混合物对海洋物种的毒性。本研究在模拟海洋食物链中探索了 TiO NPs 和 TC 的联合毒性效应:小球藻和卤虫。将小球藻与原始 TiO NPs(0.05、0.5 和 5 mg/L)、TC(0.5 mg/L)及其组合相互作用 48 h。在 TC 存在的情况下,原始 TiO NPs 通过氧化应激和叶绿体损伤对小球藻造成的毒性没有明显变化。毒性参数的主成分分析表明,生长抑制与吸附/内化之间存在很强的关联。在第二营养级(卤虫)中,TC 的水基暴露使 TiO NPs 的毒性呈加性增加。吸附和降解在 TC 从悬浮液中的去除中起主要作用,导致小球藻和卤虫的毒性呈加性。与水基暴露相比,由于在卤虫体内的摄取和积累减少,TiO NPs 和 TC 的食物暴露引起的毒性效应较小。生物放大结果表明,在这个两级海洋食物链中,TiO NPs 和 TC 的饮食传递不会造成严重的环境威胁。