School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
School of Geographic Sciences, East China Normal University, Shanghai 200241, China.
Environ Sci Technol. 2024 Nov 26;58(47):21025-21036. doi: 10.1021/acs.est.4c06088. Epub 2024 Nov 12.
The transfer of nanoparticles (NPs) through the terrestrial food chain via foliar uptake presents poorly understood risks, especially in scenarios involving copollution and plant translocation. Herein, we exposed the radishes to single and mixed foliar doses of CeO NPs and deuterated polystyrene (DPS), investigating the trophic transfer of NPs from radish shoots/roots to snails. Compared to single treatments, mixture treatments increased Ce uptake by plants but had no effect on DPS uptake. Additionally, mixture treatments did not affect the movement of Ce and DPS from shoots to roots. Under NP mixture exposure, trophic transfer efficiencies (TTF) for Ce (2.09 × 10) and DPS (2.54 × 10) significantly decreased in shoot-feeding snails. In root-feeding snails, TTF for Ce (3.32 × 10) also showed a significant decrease, while TTF for DPS remained unchanged. Mixture treatments exhibited differential impacts on different snail body parts, particularly leading to biomagnification of DPS in the digestive glands and soft tissues (TTF > 1) of snails consuming roots exposed to mixtures. Both CeO and DPS displayed a sudden increase in assimilation efficiency following translocation to the roots. This study provides insights into changes during trophic transfer due to coexposure and plant translocation processes associated with nanoparticles, enhancing our comprehension regarding their environmental risks.
通过叶片吸收将纳米颗粒 (NPs) 转移到陆地食物链中会带来人们知之甚少的风险,特别是在涉及共污染和植物迁移的情况下。在此,我们通过单一和混合叶面剂量暴露萝卜CeO NPs 和氘化聚苯乙烯 (DPS),研究 NPs 从萝卜茎叶到蜗牛的营养转移。与单一处理相比,混合物处理增加了植物对 Ce 的吸收,但对 DPS 的吸收没有影响。此外,混合物处理不会影响 Ce 和 DPS 从茎叶向根的移动。在 NP 混合物暴露下,摄食茎叶的蜗牛对 Ce(2.09×10)和 DPS(2.54×10)的营养转移效率(TTF)显著降低。在摄食根的蜗牛中,Ce 的 TTF(3.32×10)也表现出显著降低,而 DPS 的 TTF 保持不变。混合物处理对不同蜗牛身体部位表现出不同的影响,特别是在根暴露于混合物的情况下,导致摄食根的蜗牛的消化腺和软组织中 DPS 的生物放大(TTF>1)。CeO 和 DPS 在转移到根后都表现出同化效率的突然增加。本研究提供了有关共暴露和与纳米颗粒相关的植物迁移过程中营养转移变化的见解,增强了我们对其环境风险的理解。