School of Geographic Sciences, East China Normal University, Shanghai 200241, China.
School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China; State Environmental Protection Key Laboratory of Environmental Health Impact Assessment of Emerging Contaminants, Shanghai Jiao Tong University, Shanghai 200240, China.
Chemosphere. 2023 Jul;328:138576. doi: 10.1016/j.chemosphere.2023.138576. Epub 2023 Apr 3.
Concurrent effect of nanomaterials (NMs) and warming on plant performance remains largely unexplored. In this study, the effects of nanopesticide CuO and nanofertilizer CeO on wheat (Triticum aestivum) under optimal (22 °C) and suboptimal (30 °C) temperatures were evaluated. CuO-NPs exerted a stronger negative effect on plant root systems than CeO-NPs at tested exposure levels. The toxicity of both NMs could be attributed to altered nutrient uptake, induced membrane damage, and raised disturbance of antioxidative related biological pathways. Warming significantly inhibited root growth, which was mainly linked to the disturbance of energy metabolism relevant biological pathways. The toxicity of NMs was enhanced upon warming, with a stronger inhibition of root growth and Fe and Mn uptake. Increasing temperature increased the accumulation of Ce upon CeO-NP exposure, while the accumulation of Cu was not affected. The relative contribution of NMs and warming to their combined effects was evaluated by comparing disturbed biological pathways under single and multiple stressors. CuO-NPs was the dominant factor inducing toxic effects, while both CeO-NPs and warming contributed to the mixed effect. Our study revealed the importance of carefully considering global warming as a factor in risk assessment of agricultural applications of NMs.
纳米材料(NMs)和升温对植物性能的共同影响在很大程度上仍未得到探索。在这项研究中,评估了纳米农药 CuO 和纳米肥料 CeO 在最适(22°C)和亚适(30°C)温度下对小麦(Triticum aestivum)的影响。在测试的暴露水平下,CuO-NPs 对植物根系的负面影响强于 CeO-NPs。两种纳米材料的毒性都可以归因于改变的养分吸收、诱导的膜损伤和抗氧化相关生物途径的扰乱。升温显著抑制了根系生长,这主要与与能量代谢相关的生物途径的扰乱有关。在升温条件下,纳米材料的毒性增强,根生长和 Fe、Mn 吸收受到更强的抑制。在 CeO-NP 暴露下,温度升高增加了 Ce 的积累,而 Cu 的积累不受影响。通过比较单一和多种胁迫下受干扰的生物途径,评估了 NMs 和升温对其联合效应的相对贡献。CuO-NPs 是诱导毒性效应的主要因素,而 CeO-NPs 和升温都有助于混合效应。我们的研究揭示了在评估纳米材料在农业应用中的风险时,需要谨慎考虑全球变暖这一因素的重要性。