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differently charged nanoplastics 会影响三氯吡氧乙酸在白菜中的吸收、转运和代谢吗?

Do differentially charged nanoplastics affect imidacloprid uptake, translocation, and metabolism in Chinese flowering cabbage?

机构信息

Key Laboratory of Land Resources Evaluation and Monitoring in Southwest, Ministry of Education, Sichuan Normal University, Chengdu 610068, China; Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering, Ministry of Education, Institute of Hydrobiology, Jinan university, Guangzhou 510632, China; College of Geography and Resources, Sichuan Normal University, Chengdu 610101, China.

National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China, Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management, Institute of Eco-environmental and Soil Sciences, Guangdong Academy of Sciences, Guangzhou 510650, China.

出版信息

Sci Total Environ. 2023 May 1;871:161918. doi: 10.1016/j.scitotenv.2023.161918. Epub 2023 Jan 31.

Abstract

Micro(nano)plastics are ubiquitous in the environment. Among the microplastics, imidacloprid (IMI) concentration has been increasing in some intensive agricultural regions, thus receiving increased attention. However, only a few studies have investigated the interaction of nanoplastics (polystyrene (PS)) and IMI in vegetable crops. We studied the effects of positively (PS-NH) and negatively (PS-COOH) charged nanoplastics on the uptake, translocation, and degradation of IMI in Chinese flowering cabbage grown in Hoagland solution for 28 days. PS-NH co-exposure with IMI inhibited plant growth, resulting in decreased plant weight, height, and root length. Translocation of IMI from the roots to the shoots was significantly lower in the presence of PS-NH, whereas PS-COOH accelerated the accumulation and translocation of IMI in plants, thus potentially affecting IMI metabolism in plants. Notably, IMI-NTG and 5-OH-IMI were the two dominant metabolites. PS-NH co-exposure with IMI induced significant oxidation stress and considerably affected the activities of superoxide dismutase (SOD) and peroxidase (POD), indicating that the antioxidant defense system was the main mechanism for reducing oxidative damage. Notably, both positively and negatively charged nanoplastics can accumulate in Chinese flowering cabbage. Plants in the PS-COOH alone treatment group had the highest concentration of nanoplastics in both roots and shoots. The accumulation of nanoplastics, IMI, and its metabolites in plants raises concerns about their combined potential toxicity because it compromises food safety.

摘要

微(纳)塑料在环境中无处不在。在这些微塑料中,吡虫啉(IMI)的浓度在一些集约化农业地区不断增加,因此受到了更多的关注。然而,只有少数研究调查了纳米塑料(聚苯乙烯(PS))和 IMI 在蔬菜作物中的相互作用。我们研究了带正电荷(PS-NH)和带负电荷(PS-COOH)的纳米塑料对在 Hoagland 溶液中生长 28 天的白菜型花椰菜中 IMI 的吸收、转运和降解的影响。PS-NH 与 IMI 共暴露抑制了植物生长,导致植物重量、高度和根长降低。在 PS-NH 存在的情况下,IMI 从根部向茎叶的转运显著降低,而 PS-COOH 加速了 IMI 在植物中的积累和转运,从而可能影响植物中 IMI 的代谢。值得注意的是,IMI-NTG 和 5-OH-IMI 是两种主要的代谢物。PS-NH 与 IMI 共暴露诱导了明显的氧化应激,显著影响了超氧化物歧化酶(SOD)和过氧化物酶(POD)的活性,表明抗氧化防御系统是减少氧化损伤的主要机制。值得注意的是,正电荷和负电荷的纳米塑料都可以在白菜型花椰菜中积累。在仅 PS-COOH 处理组中,植物的根和茎叶中都积累了最高浓度的纳米塑料。纳米塑料、IMI 及其代谢物在植物中的积累引起了人们对其联合潜在毒性的关注,因为这会危及食品安全。

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