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模拟海洋桡足类对纳米/微塑料混合物的差异功能反应和选择性。

Modeling the differential functional responses and selectivity of a marine copepod to nano/microplastics in mixture.

机构信息

School of Energy and Environment and State Key Laboratory of Marine Pollution, City University of Hong Kong, Kowloon, Hong Kong, China; Research Centre for the Oceans and Human Health, City University of Hong Kong Shenzhen Research Institute, Shenzhen 518057, China.

School of Energy and Environment and State Key Laboratory of Marine Pollution, City University of Hong Kong, Kowloon, Hong Kong, China; Research Centre for the Oceans and Human Health, City University of Hong Kong Shenzhen Research Institute, Shenzhen 518057, China.

出版信息

J Hazard Mater. 2024 Dec 5;480:135805. doi: 10.1016/j.jhazmat.2024.135805. Epub 2024 Sep 10.

Abstract

Nano- and microplastics (NMPs) pollution is widespread in the oceans, posing potential risks to marine species. This study examined the accumulation capacity and selectivity potentials of NMPs by a marine copepod Parvocalanus crassirostris under different food mixtures by modeling the combined biokinetic and functional response. We investigated two sizes of NMPs (200 nm and 5 µm) across a concentration gradient (0 - 5000 µg/L) and varying diatom abundances (0, 10, 10 cells/mL). Fluorescence imaging and quantification revealed that P. crassirostris actively ingested NMPs at low concentration. Accumulation increased with NMPs concentration but eventually saturated due to gut capacity limits, following a Holling type II functional response (i.e., hyperbolic curve). Our novel functional response model estimated the key parameters and demonstrated that the maximum accumulation reached 5.3 % of dry weight with averaged half-saturation constants of 229 µg/L. The size of NMPs did not significantly affect the total accumulation or satiety levels. The presence of diatoms influenced the feeding selectivity and decreased the microplastic accumulation by 73 % at 10 cells/mL, while facilitating nanoplastic accumulation by 81 % at 10 cells/mL. This study enhanced our understanding of NMPs bioavailability and environmental fate in marine ecosystems.

摘要

纳米塑料和微塑料(NMPs)污染在海洋中广泛存在,对海洋物种构成潜在风险。本研究通过结合生物动力学和功能响应模型,研究了海洋桡足类 Parvocalanus crassirostris 在不同食物混合物下对 NMPs 的积累能力和选择性潜力。我们研究了两种尺寸的 NMPs(200nm 和 5μm),在浓度梯度(0-5000μg/L)和不同硅藻丰度(0、10、10 细胞/mL)下进行了研究。荧光成像和定量分析表明,P. crassirostris 在低浓度下主动摄取 NMPs。积累量随着 NMPs 浓度的增加而增加,但由于肠道容量限制,最终达到饱和,遵循霍林类型 II 功能响应(即双曲线曲线)。我们的新功能响应模型估计了关键参数,并表明最大积累量达到干重的 5.3%,平均半饱和常数为 229μg/L。NMPs 的尺寸对总积累或饱食水平没有显著影响。硅藻的存在影响了摄食选择性,在 10 个细胞/mL 时使微塑料的积累减少了 73%,而在 10 个细胞/mL 时使纳米塑料的积累增加了 81%。本研究提高了我们对海洋生态系统中 NMPs 生物利用度和环境归宿的理解。

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