Gigault Julien, Davranche Mélanie
Takuvik Laboratory, CNRS/Université Laval, 1045 Avenue de la Médecine, G1V 0A6 Québec, QC, Canada.
Géosciences Rennes, CNRS/Université Rennes, 263 av. Général Leclerc, 35000 Rennes, France.
NanoImpact. 2025 Jan;37:100544. doi: 10.1016/j.impact.2025.100544. Epub 2025 Jan 21.
Nanoplastics (NPs) are gaining increasing attention due to their widespread distribution and potential environmental and biological impacts. Spanning a variety of ecosystems - from soils and rivers to oceans and polar ice - NPs interact with complex biological and geochemical processes, posing risks to organisms across multiple trophic levels. Despite their growing presence, understanding the behavior, transport, and toxicity of nanoplastics remains challenging due to their diverse physical and chemical properties as well as the heterogeneity of environmental matrices. Currently, nanoplastics are often studied alongside microplastics as a single, homogeneous group, which obscures the nuanced behavior of NPs, particularly in terms of their colloidal properties and interactions within ecosystems. This perspective aims to highlight the critical gaps in nanoplastics research, stressing the importance for field studies and advanced detection/quantification methods to better capture their behavior across environmental interfaces. We advocate for a more integrated approach that account for the dynamic interactions between nanoplastics and surrounding biological, chemical, and physical environments, especially across key ecological gradients. Furthermore, long-term and transgenerational studies are essential to assess the chronic impacts of low-concentration nanoplastics exposure. Innovative and appropriate methodologies are needed to explore NP fate, transport, and toxicity in realistic environmental conditions. By combining advanced experimental tools, field studies, and ecological modeling frameworks, this paper outlines provides a roadmap for advancing our understanding of nanoplastics and their broader ecological impacts, ultimately shaping more effective environmental monitoring and mitigation strategies.
纳米塑料(NPs)因其广泛分布以及潜在的环境和生物影响而受到越来越多的关注。纳米塑料存在于从土壤、河流到海洋和极地冰等各种生态系统中,与复杂的生物和地球化学过程相互作用,对多个营养级的生物体构成风险。尽管其存在日益增多,但由于纳米塑料具有多样的物理和化学性质以及环境基质的异质性,了解其行为、迁移和毒性仍然具有挑战性。目前,纳米塑料通常与微塑料一起作为一个单一的、均质的群体进行研究,这掩盖了纳米塑料的细微行为,特别是在其胶体性质和生态系统内相互作用方面。本观点旨在突出纳米塑料研究中的关键差距,强调实地研究和先进检测/定量方法对于更好地捕捉其在环境界面上行为的重要性。我们提倡采用一种更综合的方法,考虑纳米塑料与周围生物、化学和物理环境之间的动态相互作用,特别是跨越关键生态梯度的相互作用。此外,长期和跨代研究对于评估低浓度纳米塑料暴露的慢性影响至关重要。需要创新且合适的方法来探索纳米塑料在实际环境条件下的归宿、迁移和毒性。通过结合先进的实验工具、实地研究和生态建模框架,本文概述了一条推进我们对纳米塑料及其更广泛生态影响理解的路线图,最终形成更有效的环境监测和缓解策略。