Toxicity mechanism of microplastics on the growth traits and metabolic pathways of Vallisneria natans under different light environments

IF 6.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Ecotoxicology and Environmental Safety Pub Date : 2025-02-01 DOI:10.1016/j.ecoenv.2025.117772
Meixuan Liu , Wei Hua , Chungui Yu , Siyu Zhang , Wei Li , Chong Li , Jianfeng Peng , Ruiping Liu , Huijuan Liu , Jiuhui Qu
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Abstract

Freshwater plants are threatened by microplastics (MPs). While many studies have reported the effects of MPs on aquatic plants and animals, few have examined the effects of MPs on plant metabolism at different light intensities. We explore cellular, metabolic, and stress responses of Vallisneria natans at different light intensities (0, 20, 90, 160, 280 μmol·m−2·s−1), without and with (50 mg·L−1) MPs. The experiment showed that that the strong light promotes adsorption and accumulation of MPs on leaf and root tissues, affected growth rate, and changed metabolic pathways, inhibited photosynthetic processes, and enhanced oxidative stress responses in V. natans. Metabolomic analysis and experimental validation revealed that the combination of 280 μmol m−2·s−1 and MPs interfered most severely with plant carbon and nitrogen metabolism, lipid metabolism, and amino acid metabolism pathways compared with the combination of 90 μmol m−2·s−1 and MPs. This condition also significantly inhibited the activities of photosynthesis and energy transfer-related regulators and proteins, as well as stimulated oxidative stress-related pathways and exacerbated oxidative stress toxicity responses. The results of the research indicate that the highest light intensity tested can increase the accumulation of MPs, leading to V. natans cell damage, inhibition of photosynthetic metabolism, and the risk of oxidative toxic stress. Our results provide a basis for the analysis of the growth and metabolism processes and risk assessment of aquatic plants under the action of light and MPs.
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不同光环境下微塑料对水草生长性状和代谢途径的毒性机制
淡水植物受到微塑料的威胁。虽然许多研究报道了MPs对水生动植物的影响,但很少有人研究MPs在不同光强下对植物代谢的影响。我们研究了不同光强(0、20、90、160、280 μmol·m−2·s−1)、无(50 mg·L−1)MPs和胁迫下缬草的细胞、代谢和应激反应。实验表明,强光促进紫菀叶片和根组织对MPs的吸附和积累,影响生长速度,改变代谢途径,抑制光合过程,增强氧化应激反应。代谢组学分析和实验验证表明,与90 μmol m−2·s−1和MPs组合相比,280 μmol m−2·s−1和MPs组合对植物碳氮代谢、脂质代谢和氨基酸代谢途径的干扰最为严重。这一条件还显著抑制了光合作用和能量转移相关调节因子和蛋白质的活性,刺激了氧化应激相关通路,加剧了氧化应激毒性反应。研究结果表明,在最高光照强度下,紫花苜蓿MPs的积累会增加,导致紫花苜蓿细胞损伤,抑制光合代谢,增加氧化毒性应激风险。本研究结果为光和MPs作用下水生植物生长代谢过程分析和风险评估提供了依据。
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来源期刊
CiteScore
12.10
自引率
5.90%
发文量
1234
审稿时长
88 days
期刊介绍: Ecotoxicology and Environmental Safety is a multi-disciplinary journal that focuses on understanding the exposure and effects of environmental contamination on organisms including human health. The scope of the journal covers three main themes. The topics within these themes, indicated below, include (but are not limited to) the following: Ecotoxicology、Environmental Chemistry、Environmental Safety etc.
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