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叶面喷施绿色合成的 ZnO 纳米粒子降低了生菜茎叶中的 Cd 含量。

Foliar application of green synthesized ZnO nanoparticles reduced Cd content in shoot of lettuce.

机构信息

Department of Agriculture, University of Arkansas at Pine Bluff, AR, 71601, United States.

Department of Agriculture, University of Arkansas at Pine Bluff, AR, 71601, United States.

出版信息

Chemosphere. 2023 Oct;338:139589. doi: 10.1016/j.chemosphere.2023.139589. Epub 2023 Jul 19.

DOI:10.1016/j.chemosphere.2023.139589
PMID:37478984
Abstract

Though Zinc (Zn) supplementation can mitigate root-based Cadmium (Cd) uptake in plants, the impact of foliar-applied Zinc Oxide nanoparticles (ZnO NPs) on this process remains under-explored. This study investigates the influence of foliar-applied ZnO NPs on the growth of lettuce and its Cd uptake in Cd-contaminated soil in greenhouse setting. Green synthesized ZnO (G-ZnO) NPs (10 and 100 mg/L) using sweet potato leaf extracts were used, and compared with commercially available ZnO (C-ZnO) NPs (100 mg/L) for their efficacy. Scanning electron microscopy and Fourier-transform infrared spectroscopy were used for G-ZnO NPs characterization. Shoot dry weight, antioxidant activity, and chlorophyll content were all negatively affected by Cd but positively affected by ZnO NPs application. ZnO NPs application resulted in a notable reduction in lettuce Cd uptake, with the highest reduction (43%) observed at 100 mg/L G-ZnO NPs. In the lettuce shoot, Zn and Cd concentration showed a significant inverse correlation (R = 0.79-0.9, P < 0.05). This study offers insights into the impact of chemical and green synthesized ZnO NPs on enhancing crop growth under stress conditions, and their role in modulating Cd uptake in plants, indicating potential implications for sustainable agricultural practices.

摘要

尽管锌(Zn)补充可以减轻植物根部的镉(Cd)吸收,但叶面施加氧化锌纳米粒子(ZnO NPs)对这一过程的影响仍未得到充分探索。本研究在温室环境下,调查了叶面施加 ZnO NPs 对生菜生长及其在 Cd 污染土壤中 Cd 吸收的影响。使用甘薯叶提取物绿色合成了 ZnO(G-ZnO)NPs(10 和 100mg/L),并与市售 ZnO(C-ZnO)NPs(100mg/L)进行了比较,以评估它们的效果。利用扫描电子显微镜和傅里叶变换红外光谱对 G-ZnO NPs 进行了表征。结果表明,Cd 会降低生菜的干物质重量、抗氧化活性和叶绿素含量,但 ZnO NPs 的施加会产生积极影响。ZnO NPs 的施加显著降低了生菜对 Cd 的吸收,其中 100mg/L G-ZnO NPs 的降低幅度最大(43%)。在生菜地上部分,Zn 和 Cd 的浓度呈显著负相关(R=0.79-0.9,P<0.05)。本研究深入了解了化学和绿色合成 ZnO NPs 在增强胁迫条件下作物生长方面的作用,以及它们在调节植物 Cd 吸收方面的作用,这为可持续农业实践提供了潜在的启示。

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