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DGT-measured fluxes explain the chloride-enhanced cadmium uptake by plants at low but not at high Cd supply

机译:DGT测量的通量解释了低Cd供应量但不是高Cd供应量的植物对氯的吸收

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摘要

The technique of diffusive gradients in thin films (DGT) has been shown to be a promising tool to assess metal uptake by plants in a wide range of soils. With the DGT technique, diffusion fluxes of trace metals through a diffusion layer towards a resin layer are measured. The DGT technique therefore mimics the metal uptake by plants if uptake is limited by diffusion of the free ion to the plant roots, which may not be the case at high metal supply. This study addresses the capability of DGT to predict cadmium (Cd) uptake by plants at varying Cd supply. To test the performance of DGT in such conditions, we used the chloride (Cl-) enhancement effect, i.e. the increase in Cd solution concentrations-due to chloride complexation of Cd-and Cd uptake with increasing Cl- concentrations, as previously characterized in pot, field and solution culture experiments. The uptake of Cd by spinach was assessed in soil amended with Cd (0.4-10.5 mg Cd kg(-1)) and NaCl (up to 120 mM) in a factorial design. Treatments with NaNO3 were included as a reference to correct for ionic strengths effects. The effect of Cl- on the shoot Cd concentrations was significant at background Cd but diminished with increasing soil Cd. Increasing Cl- concentrations increased the root area based Cd uptake fluxes by more than a factor of 5 at low soil Cd, but had no significant effect at high soil Cd. Short-term uptake of Cd in spinach from nutrient solutions confirmed these trends. In contrast, increasing Cl- concentrations increased the DGT measured fluxes by a factor of 5 at all Cd levels. As a result, DGT fluxes were able to explain soil Cl- effects on plant Cd concentrations at low but not at high Cd supply. This example illustrates under which conditions DGT mimics trace metal bioavailability. If biouptake is controlled by diffusive limitations, DGT should be a successful tool for predicting ion uptake across different conditions.
机译:薄膜中的扩散梯度技术(DGT)已被证明是评估各种土壤中植物对金属吸收的有前途的工具。使用DGT技术,可以测量痕量金属通过扩散层向树脂层的扩散通量。因此,如果摄取受到游离离子向植物根部的扩散的限制,则DGT技术可以模拟植物对金属的吸收,而在高金属供应量下情况可能并非如此。这项研究解决了DGT预测镉供应不同的植物吸收镉(Cd)的能力。为了测试DGT在这种条件下的性能,我们使用了氯化物(Cl-)增强作用,即,由于氯化物络合了Cd和C吸收,随着C-浓度的增加,Cd溶液浓度的增加,如先前在罐中所描述的那样。 ,现场和溶液培养实验。在因子设计中,在用Cd(0.4-10.5 mg Cd kg(-1))和NaCl(最高达120 mM)修正的土壤中评估了菠菜对Cd的吸收。包括NaNO3处理作为校正离子强度影响的参考。 Cl-对地上部分镉的影响显着,但随着土壤中镉含量的增加而减弱。 Cl-浓度的增加在低土壤Cd时使基于根部区域的Cd吸收通量增加了5倍以上,但在高土壤Cd时无显着影响。营养液中菠菜中镉的短期吸收证实了这些趋势。相反,在所有Cd水平下,增加的Cl-浓度会使DGT测得的通量增加5倍。结果,DGT通量能够解释土壤Cl-在低Cd供应下而不对高Cd供应的影响。此示例说明了DGT在哪种条件下模拟痕量金属的生物利用度。如果生物吸收受到扩散限制的控制,则DGT应该是预测不同条件下离子吸收的成功工具。

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