聚苯乙烯纳米塑料胁迫下烟草的生长与代谢响应机制
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山东大学环境科学与工程学院

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国家自然科学基金项目(面上项目,重点项目,重大项目)(22425604,22176114,22406110)


The Growth and Metabolic Response Mechanism of Tobacco under Polystyrene Nanoplastics Stress
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College of Environmental Science and Engineering,Shandong University,Qingdao

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The National Natural Science Foundation of China (General Program, Key Program, Major Research Plan)(22425604,22176114,22406110)

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    摘要:

    微纳塑料作为新兴污染物在土壤环境中广泛分布,但目前研究多聚焦于水生生态系统与粮食作物,对烟草等具有特殊经济价值和复杂次生代谢的陆生嗜好类作物关注不足。本研究以本氏烟草(Nicotiana benthamiana)为研究对象,采用盆栽和水培相结合的实验方法,系统探究了聚苯乙烯纳米塑料(PS-NPs)根系暴露对烟草生长发育及生理代谢的影响。盆栽实验表明,与对照组相比,150、500和800 mg·kg-1的PS-NPs促使烟草幼苗株高分别显著下降了18.80%、29.42%和30.67%。烟草水培暴露30天后,50和150 μg·mL-1的PS-NPs显著抑制株高并促进根系伸长,增幅达43.52%和47.20%;同时,烟草地上部的鲜重显著高于对照组,而干重则被PS-NPs显著抑制。生理生化分析显示,PS-NPs诱导根系氧化应激,导致过氧化氢和丙二醛含量升高及超氧化物歧化酶活性增强。代谢组学结果表明,根系中糖酵解与TCA循环关键中间产物(如葡萄糖-6-磷酸、柠檬酸、α-酮戊二酸)显著下调,而异亮氨酸、缬氨酸等游离氨基酸积累,表明氮资源重分配以维持渗透调节和基础防御。叶片则通过碳截留积累可溶性糖及磷酸己糖,并增强黄酮类次生代谢物与非蛋白氨基酸等防御化合物的生物合成,表现出明显的器官特异性代谢调控。综上,PS-NPs根系暴露显著抑制烟草地上部生长并诱导氧化应激,激活了抗氧化系统且扰动了相关代谢通路。根系和叶片通过差异化代谢策略协同应对胁迫,体现出器官特异性的适应机制。本研究揭示了植物对微纳塑料胁迫的代谢适应机制,对科学评估陆地环境中微纳塑料的潜在生态环境风险具有重要指导意义。

    Abstract:

    【Objective】Micro- and nanoplastics have emerged as pervasive contaminants in terrestrial ecosystems. However, current research remains disproportionately focused on aquatic environments and food crops, leaving a significant knowledge gap regarding their effects on economically important non-food cash crops like tobacco, which possess high economic value and complex secondary metabolic pathways. This study systematically investigates the physiological and metabolic responses of Nicotiana benthamiana to root exposure of polystyrene nanoplastics (PS-NPs), with a particular focus on organ-specific adaptations in carbon and nitrogen metabolism under stress. Understanding these mechanisms is critical for ecological risk assessment and for safeguarding the productivity and quality in non-food cash crop systems, which have been largely neglected in the current nanoplastic research paradigm. 【Method】We employed a dual experimental approach integrating both pot cultivation and hydroponic systems to comprehensively evaluate PS-NPs effects on N. benthamiana seedlings. This integrated design enabled us to distinguish direct particle-plant interactions under controlled hydroponic conditions from more complex soil-mediated effects in pot environments. We employed metabolomics analysis coupled with detailed physiological analyses, including oxidative stress markers, antioxidant enzyme activities, and biomass measurements, to unravel the metabolic and defense networks activated under PS-NPs stress. 【Result】Pot experiments revealed a clear dose-dependent inhibition of plant growth, with PS-NPs concentrations of 150, 500, and 800 mg·kg-1 reducing plant height by 18.80%, 29.42%, and 30.67%, respectively. Hydroponic exposure induced even more striking morphological alterations, characterized by significant shoot suppression accompanied by a remarkable 43.52% and 47.20% increase in root elongation at 50 and 150 μg·mL-1. Paradoxically, the shoot fresh weight increased while dry weight accumulation was markedly reduced, indicating fundamental disruptions in carbon partitioning and structural biomass synthesis. Physiological analyses demonstrated severe oxidative stress in N. benthamiana roots, evidenced by elevated hydrogen peroxide and malondialdehyde levels alongside significantly enhanced superoxide dismutase activity, indicating activation of the antioxidant defense system. Metabolomic profiling identified extensive perturbations across multiple pathways, particularly in amino acid metabolism, carbohydrate dynamics, and organic acid transformation. It indicated that PS-NPs exposure disrupted central carbon metabolism, including carbon metabolism, galactose metabolism, and energy production pathways through glycolysis and oxidative phosphorylation. Moreover, N. benthamiana roots exhibited substantial downregulation of critical TCA cycle intermediates, including citrate and α-ketoglutarate, coupled with reduced glycolytic intermediates such as glucose-6-phosphate and fructose-6-phosphate, while simultaneously accumulating compatible solutes like isoleucine and valine. This result indicates strategic reallocation of nitrogen resources toward osmotic protection and fundamental defense mechanisms. Conversely, N. benthamiana leaves implemented an efficient carbon sequestration strategy, accumulating hexose phosphates and soluble sugars, and upregulating the biosynthesis of specialized defensive compounds, including flavonoid secondary metabolites and non-protein amino acids, demonstrating organ-specific metabolic specialization. Importantly, nitrogen metabolism of N. benthamiana leaves also shifted toward active defense and signal transduction. The pronounced upregulation of 4-aminobutyric acid (GABA) and its derivative 2,4-diaminobutyric acid marked the activation of the GABA pathway, a pivotal stress-response pathway. This pathway plays a crucial role in the reconstruction of carbon and nitrogen balance, and also assumes core functions in mitigating oxidative stress and regulating signal transduction within the N. benthamiana defense network. 【Conclusion】 This study demonstrates that PS-NPs root exposure initiates a complex adaptive response in N. benthamiana seedlings, characterized by inhibited shoot growth and dry matter accumulation, and stimulated root elongation as a stress-avoidance mechanism. PS-NPs root exposure also induced oxidative damage and triggered the comprehensive reorganization of metabolic networks. The research reveals an organ-specific defense strategy wherein roots prioritize immediate survival through osmotic adjustment and basic defense, while the leaves activate advanced chemical defense pathways, coordinated in part through GABA-mediated signaling. This study provides novel mechanistic insights into the metabolic adaptation of plants under nanoplastic stress and offers an important scientific basis for assessing the potential ecological risks of micro- and nanoplastics in terrestrial environments.

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谭苗苗,孙晓东,王 月,邢荣祥,孟 鸽,袁宪正.聚苯乙烯纳米塑料胁迫下烟草的生长与代谢响应机制[J].土壤学报,DOI:10.11766/trxb202507310366,[待发表]
TAN Miaomiao, SUN Xiaodong, WANG Yue, XING Rongxiang, MENG Ge, YUAN Xianzheng. The Growth and Metabolic Response Mechanism of Tobacco under Polystyrene Nanoplastics Stress[J]. Acta Pedologica Sinica, DOI:10.11766/trxb202507310366,[In Press]

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  • 收稿日期:2025-07-31
  • 最后修改日期:2025-10-20
  • 录用日期:2025-11-06
  • 在线发布日期: 2025-11-25
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