Corsi Ilaria, Bellingeri Arianna, Eliso Maria Concetta, Grassi Giacomo, Liberatori Giulia, Murano Carola, Sturba Lucrezia, Vannuccini Maria Luisa, Bergami Elisa
Department of Physical, Earth and Environmental Sciences, University of Siena, Via P. A. Mattioli 4, 53100 Siena, Italy.
Department of Biology and Evolution of Marine Organisms, Stazione Zoologica Anton Dohrn, Villa Comunale, 80121 Naples, Italy.
Nanomaterials (Basel). 2021 Jul 24;11(8):1903. doi: 10.3390/nano11081903.
Marine nano-ecotoxicology has emerged with the purpose to assess the environmental risks associated with engineered nanomaterials (ENMs) among contaminants of emerging concerns entering the marine environment. ENMs' massive production and integration in everyday life applications, associated with their peculiar physical chemical features, including high biological reactivity, have imposed a pressing need to shed light on risk for humans and the environment. Environmental safety assessment, known as ecosafety, has thus become mandatory with the perspective to develop a more holistic exposure scenario and understand biological effects. Here, we review the current knowledge on behavior and impact of ENMs which end up in the marine environment. A focus on titanium dioxide (n-TiO) and silver nanoparticles (AgNPs), among metal-based ENMs massively used in commercial products, and polymeric NPs as polystyrene (PS), largely adopted as proxy for nanoplastics, is made. ENMs eco-interactions with chemical molecules including (bio)natural ones and anthropogenic pollutants, forming eco- and bio-coronas and link with their uptake and toxicity in marine organisms are discussed. An ecologically based design strategy (eco-design) is proposed to support the development of new ENMs, including those for environmental applications (e.g., nanoremediation), by balancing their effectiveness with no associated risk for marine organisms and humans.
海洋纳米生态毒理学应运而生,旨在评估进入海洋环境的新出现关注污染物中与工程纳米材料(ENMs)相关的环境风险。ENMs的大规模生产及其在日常生活应用中的整合,再加上其独特的物理化学特性,包括高生物反应性,迫切需要阐明其对人类和环境的风险。因此,从制定更全面的暴露情况并了解生物效应的角度来看,环境安全评估(即生态安全)已成为强制性要求。在此,我们综述了关于最终进入海洋环境的ENMs的行为和影响的现有知识。重点关注商业产品中大量使用的金属基ENMs中的二氧化钛(n-TiO)和银纳米颗粒(AgNPs),以及作为纳米塑料替代物而大量采用的聚苯乙烯(PS)等聚合物纳米颗粒。讨论了ENMs与化学分子(包括(生物)天然分子和人为污染物)的生态相互作用,形成生态和生物冠层以及它们与海洋生物摄取和毒性的联系。提出了一种基于生态的设计策略(生态设计),以支持新型ENMs的开发,包括那些用于环境应用(如纳米修复)的ENMs,通过平衡其有效性与对海洋生物和人类无相关风险来实现。