Environmental Biogeochemistry and Ecotoxicology, Institute F.-A. Forel, Earth and Environmental Science, Faculty of Sciences, University of Geneva , Versoix , Switzerland.
Nanotoxicology. 2014 Sep;8(6):605-30. doi: 10.3109/17435390.2013.809810. Epub 2013 Jun 19.
Nanotechnology has revolutionised many areas of modern life, technology and research, which is reflected in the steadily increasing global demand for and consumption of engineered nanomaterials and the inevitable increase of their release into the environment by human activity. The overall long-term impact of engineered nanomaterials on ecosystems is still unknown. Various inorganic nanoparticles have been found to exhibit bactericidal properties and cause growth inhibition in model aquatic microalgae, but the mechanisms of toxicity are not yet fully understood. The causal link between particle properties and biological effects or reactive oxygen species generation is not well established and represents the most eminent quest of nanoecotoxicological investigation. In this review, the current mechanistic understanding of the toxicity of inorganic metal and metal oxide engineered nanomaterials towards bacterial and aquatic microalgal model organisms based on the paradigm of oxidative stress is presented along with a detailed compilation of available literature on the major toxicity factors and research methods.
纳米技术已经彻底改变了现代生活、技术和研究的许多领域,这反映在全球对工程纳米材料的需求和消耗稳步增加,以及人类活动不可避免地将它们释放到环境中。工程纳米材料对生态系统的总体长期影响仍不清楚。已经发现各种无机纳米粒子具有杀菌特性,并导致模式水生微藻的生长抑制,但毒性机制尚不完全清楚。颗粒特性与生物效应或活性氧生成之间的因果关系尚未很好地建立,这是纳米生态毒理学研究中最突出的问题。在这篇综述中,根据氧化应激的范例,介绍了目前对基于无机金属和金属氧化物工程纳米材料对细菌和水生微藻模型生物的毒性的机制理解,并详细汇编了关于主要毒性因素和研究方法的现有文献。