A critical review on the toxicity regulation and ecological risks of zinc oxide nanoparticles to plants†

IF 5.8 2区 环境科学与生态学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Mengen Kang, Yi Liu, Yuzhu Weng, Haoke Wang and Xue Bai
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Abstract

The advancement and application of nanotechnology inevitably cause the release of nanoparticles (NPs) into the environment, in particular, zinc oxide (ZnO) NPs may seriously threaten the ecological safety of plants. This review focuses on the translocation and physiological responses of ZnO NPs in plants to systematically summarize the toxicological effects and molecular mechanisms of NPs. The results indicated that ZnO NPs migrated to tissues via uptake and translocation, gradually accumulated in intracellular and intercellular spaces, and led to physiological inhibition, nutrient imbalance, and photosynthesis perturbation in plants. This abiotic stress triggered the overproduction of reactive oxygen species (ROS) by perturbing cellular redox homeostasis, while the activation of antioxidant genes and alteration of KEGG pathways enhanced the ability of plants to resist phytotoxicity. Furthermore, ZnO NPs significantly altered metabolites associated with oxidative stress, antioxidant defense, membrane disorder and energy expenditure, affected carbon/nitrogen metabolism via the TCA cycle and glycolysis pathway, and augmented cytotoxicity and genotoxicity by inducing DNA damage and inhibiting mitosis. More notably, the composite exposure of ZnO NPs with other substances is bifacial and may create potential mitigation or synergistic effects on plants in ecosystems, thus posing uncertain ecological risks. This review systematically provides clarification on the environmental fate of ZnO NPs in plants at the physiological and molecular levels, theoretical references on the toxicity mechanisms and potential risks of NPs, and directions and insights for future research to achieve strategies that minimize risks and maximize benefits.

Abstract Image

氧化锌纳米粒子对植物的毒性调控及生态风险研究综述
纳米技术的进步和应用不可避免地会导致纳米颗粒(NPs)释放到环境中,尤其是氧化锌(ZnO)NPs可能严重威胁植物的生态安全。本文综述了ZnO纳米粒子在植物中的转运和生理反应,系统地总结了纳米粒子的毒理学效应和分子机制。结果表明,ZnO NPs通过吸收和转运迁移到组织中,在细胞内和细胞间逐渐积累,并导致植物的生理抑制、营养失衡和光合作用紊乱。这种非生物胁迫通过干扰细胞氧化还原稳态触发活性氧(ROS)的过量产生,而抗氧化基因的激活和KEGG途径的改变增强了植物抵抗植物毒性的能力。此外,ZnO NP显著改变了与氧化应激、抗氧化防御、膜紊乱和能量消耗相关的代谢产物,通过TCA循环和糖酵解途径影响碳/氮代谢,并通过诱导DNA损伤和抑制有丝分裂增强细胞毒性和遗传毒性。更值得注意的是,ZnO NPs与其他物质的复合暴露是双面的,可能会对生态系统中的植物产生潜在的缓解或协同效应,从而带来不确定的生态风险。这篇综述从生理和分子水平系统地阐明了ZnO纳米颗粒在植物中的环境命运,为纳米颗粒的毒性机制和潜在风险提供了理论参考,并为未来的研究提供了方向和见解,以实现风险最小化和效益最大化的策略。
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来源期刊
Environmental Science: Nano
Environmental Science: Nano CHEMISTRY, MULTIDISCIPLINARY-ENVIRONMENTAL SCIENCES
CiteScore
12.20
自引率
5.50%
发文量
290
审稿时长
2.1 months
期刊介绍: Environmental Science: Nano serves as a comprehensive and high-impact peer-reviewed source of information on the design and demonstration of engineered nanomaterials for environment-based applications. It also covers the interactions between engineered, natural, and incidental nanomaterials with biological and environmental systems. This scope includes, but is not limited to, the following topic areas: Novel nanomaterial-based applications for water, air, soil, food, and energy sustainability Nanomaterial interactions with biological systems and nanotoxicology Environmental fate, reactivity, and transformations of nanoscale materials Nanoscale processes in the environment Sustainable nanotechnology including rational nanomaterial design, life cycle assessment, risk/benefit analysis
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