Slaveykova Vera I, Li Mengting, Worms Isabelle A, Liu Wei
Environmental Biogeochemistry and Ecotoxicology, Department F.-A. Forel for Environmental and Aquatic Sciences, School of Earth and Environmental Sciences, Faculty of Science & Institute for Environmental Sciences, University of Geneva, 66, boulevard Carl-Vogt, CH-1211 Genève 4, Switzerland;, Email:
Environmental Biogeochemistry and Ecotoxicology, Department F.-A. Forel for Environmental and Aquatic Sciences, School of Earth and Environmental Sciences, Faculty of Science & Institute for Environmental Sciences, University of Geneva, 66, boulevard Carl-Vogt, CH-1211 Genève 4, Switzerland.
Chimia (Aarau). 2020 Mar 25;74(3):115-121. doi: 10.2533/chimia.2020.115.
The present review critically examines the state-of-the-art of the research concerning the likely environmental implications of engineered nanoparticles (ENPs) with specific emphasis on their interactions with phytoplankton in the aquatic environment. Phytoplankton plays a key role in the global carbon cycle and contributes to the half of the global primary production, thus representing some of the Earth ' s most critical organisms making the life on our planet possible. With examples from our own research and the literature, we illustrate what happens when aquatic organisms are unintentionally exposed to metal-containing ENPs, which are increasingly released into the environment from nano-enabled materials. We highlight the complexity of the ENPs behavior in the aquatic environment and focus on the three key steps of the bioavailability process: exposure availability, uptake availability and toxico-availability. The influence of the phytoplankton on the ENPs fate in the aquatic environment is discussed, too.
本综述批判性地审视了有关工程纳米颗粒(ENPs)可能对环境产生影响的研究现状,特别强调了它们在水生环境中与浮游植物的相互作用。浮游植物在全球碳循环中起着关键作用,贡献了全球初级生产力的一半,因此是地球上一些最关键的生物,使我们星球上的生命成为可能。通过我们自己的研究和文献中的例子,我们说明了当水生生物无意中接触到含金属的ENPs时会发生什么,这些ENPs正越来越多地从纳米材料中释放到环境中。我们强调了ENPs在水生环境中行为的复杂性,并关注生物可利用性过程的三个关键步骤:暴露可利用性、吸收可利用性和毒理可利用性。还讨论了浮游植物对ENPs在水生环境中归宿的影响。