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Foliar or root exposures to smelter particles: Consequences for lead compartmentalization and speciation in plant leaves

机译:冶炼厂颗粒的叶面或根部暴露:植物叶片中铅分隔和物种形成的后果

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摘要

In urban areaswith high fallout of airborne particles,metal uptake by plantsmainly occurs by foliar pathways and can strongly impact crop quality. However, there is a lack of knowledge on metal localization and speciation in plants after pollution exposure, especially in the case of foliar uptake. In this study, two contrasting crops, lettuce (Lactuca sativa L.) and rye-grass (Lolium perenne L.), were exposed to Pb-rich particles emitted by a Pb-recycling factory via either atmospheric or soil application. Pb accumulation in plant leaves was observed for both ways of exposure. The mechanisms involved in Pb uptake were investigated using a combination of microscopic and spectroscopic techniques (electron microscopy, laser ablation, Raman microspectroscopy, and X-ray absorption spectroscopy). The results showthat Pb localization and speciation are strongly influenced by the type of exposure (root or shoot pathway) and the plant species. Foliar exposure is the main pathway of uptake, involving the highest concentrations in plant tissues. Under atmospheric fallouts, Pb-rich particles were strongly adsorbed on the leaf surface of both plant species. In lettuce, stomata contained Pb-rich particles in their apertures, with some deformations of guard cells. In addition to PbO and PbSO4, chemical forms that were also observed in pristine particles, newspecies were identified: organic compounds (minimum 20%) and hexagonal platy crystals of PbCO3. In rye-grass, the changes in Pb speciation were even more egregious: Pb–cell wall and Pb–organic acid complexes were the major species observed. For root exposure, identified here as a minor pathway of Pb transfer compared to foliar uptake, another secondary species, pyromorphite, was identified in rye-grass leaves. Finally, combining bulk and spatially resolved spectroscopic techniques permitted both the overall speciation and the minor but possibly highly reactive lead species to be determined in order to better assess the health risks involved.
机译:在空气中颗粒物高释放量的城市地区,植物对金属的吸收主要通过叶面途径进行,并且会严重影响作物的品质。但是,缺乏关于污染暴露后植物中金属定位和物种形成的知识,特别是在摄取叶的情况下。在这项研究中,两种对比作物,莴苣(Lactuca sativa L.)和黑麦草(Lolium perenne L.),通过大气或土壤施用,暴露于铅回收工厂排放的富含铅的颗粒。两种暴露方式均观察到植物叶片中的Pb积累。使用显微镜和光谱技术(电子显微镜,激光烧蚀,拉曼光谱和X射线吸收光谱)的组合研究了Pb吸收的机制。结果表明,铅的定位和物种形成受暴露类型(根或芽途径)和植物种类的强烈影响。叶面暴露是摄取的主要途径,涉及植物组织中的最高浓度。在大气尘埃下,两种植物的叶片表面均富含Pb富集颗粒。在生菜中,气孔的孔中含有富含Pb的颗粒,并且保卫细胞有些变形。除了PbO和PbSO4外,在原始颗粒中还观察到化学形式,还鉴定了新物种:有机化合物(最低20%)和PbCO3的六角形板状晶体。在黑麦草中,Pb形态的变化更为严重:Pb细胞壁和Pb有机酸复合物是观察到的主要物种。对于根系暴露,在黑麦草叶中鉴定出与叶摄取相比,Pb转移是次要的Pb转移途径,另一个次生物种,次晶体。最后,结合体积和空间分辨光谱技术,可以确定总体形态和次要但可能具有高反应活性的铅物种,以便更好地评估所涉及的健康风险。

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