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Localized Flux Maxima of Arsenic, Lead, and Iron around Root Apices in Flooded Lowland Rice

机译:低地稻田根尖周围砷,铅和铁的局部通量最大值

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摘要

In wetland-adapted plants, such as rice, it is typically root apexes, sites of rapid entry for waterutrients, where radial oxygen losses (ROLs) are highest. Nutrient/toxic metal uptake therefore largely occurs through oxidized zones and pH microgradients. However, the processes controlling the acquisition of trace elements in rice have been difficult to explore experimentally because of a lack of techniques for simultaneously measuring labile trace elements and O_2/pH. Here, we use new diffusive gradients in thin films (DGT)/planar optode sandwich sensors deployed in situ on rice roots to demonstrate a new geochemical niche of greatly enhanced As, Pb, and Fe(Ⅱ) mobilization into solution immediately adjacent to the root tips characterized by O_2 enrichment and low pH. Fe(Ⅱ) mobilization was congruent to that of the peripheral edge of the aerobic root zone, demonstrating that the Fe(Ⅱ) mobilization maximum only developed in a narrow O_2 range as the oxidation front penetrates the reducing soil. The Fe flux to the DGT resin at the root apexes was 3-fold higher than the anaerobic bulk soil and 27 times greater than the aerobic rooting zone. These results provide new evidence for the importance of coupled diffusion and oxidation of Fe in modulating trace metal solubilization, dispersion, and plant uptake.
机译:在适应湿地的植物(例如水稻)中,它通常是根尖,是水分/养分快速进入的场所,其中径向氧气损失(ROL)最高。因此,营养/有毒金属的吸收主要通过氧化区和pH微梯度发生。然而,由于缺乏同时测量不稳定的痕量元素和O_2 / pH的技术,控制水稻中痕量元素的获取过程一直很难进行实验。在这里,我们使用在水稻根部原位部署的薄膜(DGT)/平面光电二极管三明治传感器中的新扩散梯度,来证明As,Pb和Fe(Ⅱ)迁移到紧邻根部的溶液中大大增强的新地球化学生态位以O_2富集和低pH为特征的吸头。 Fe(Ⅱ)的动员量与好氧根区周缘的动量一致,表明Fe(Ⅱ)的动员最大值仅在氧化前沿穿透还原性土壤时才在狭窄的O_2范围内发展。根尖处DGT树脂的铁通量比厌氧块状土壤高3倍,比需氧生根区大27倍。这些结果提供了新的证据,说明铁的扩散和氧化耦合在调节痕量金属的增溶,分散和植物吸收方面的重要性。

著录项

  • 来源
    《Environmental Science & Technology》 |2014年第15期|8498-8506|共9页
  • 作者单位

    Lancaster Environment Centre, Lancaster University, Lancaster LA1 4YQ, United Kingdom,Institute for Global Food Security, Queen's University Belfast, Belfast BT9 5HN, United Kingdom;

    Rhizosphere Ecology and Biogeochemistry Group, Institute of Soil Science, Department of Forest and Soil Sciences, University of Natural Resources and Life Sciences, Konrad-Lorenz-Strasse 24, A-3430 Tulln, Austria;

    Institute of Biology and Nordic Centre for Earth Evolution (NordCEE), University of Southern Denmark, 5230 Odense M, Denmark,Greenland Climate Research Centre, Greenland Institute of National Resources, Kivioq 2, Post Office Box 570, 3900 Nuuk, Greenland,Scottish Marine Institute, Scottish Association for Marine Science, Oban PA37 1QA, United Kingdom;

    Lancaster Environment Centre, Lancaster University, Lancaster LA1 4YQ, United Kingdom,Faculty of Agriculture and Life Sciences, Lincoln University, Post Office Box 84, Lincoln 7647, New Zealand;

    Rhizosphere Ecology and Biogeochemistry Group, Institute of Soil Science, Department of Forest and Soil Sciences, University of Natural Resources and Life Sciences, Konrad-Lorenz-Strasse 24, A-3430 Tulln, Austria;

    Rhizosphere Ecology and Biogeochemistry Group, Institute of Soil Science, Department of Forest and Soil Sciences, University of Natural Resources and Life Sciences, Konrad-Lorenz-Strasse 24, A-3430 Tulln, Austria;

    Institute of Biology and Nordic Centre for Earth Evolution (NordCEE), University of Southern Denmark, 5230 Odense M, Denmark,Greenland Climate Research Centre, Greenland Institute of National Resources, Kivioq 2, Post Office Box 570, 3900 Nuuk, Greenland,Scottish Marine Institute, Scottish Association for Marine Science, Oban PA37 1QA, United Kingdom,Arctic Research Center, Arhus University, 8000 Aarhus C, Denmark;

    Lancaster Environment Centre, Lancaster University, Lancaster LA1 4YQ, United Kingdom;

    Lancaster Environment Centre, Lancaster University, Lancaster LA1 4YQ, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:01:14

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