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叶片衰老对生菜-蜗牛食物链中铜和镉迁移的影响。

Leaf aging effects on copper and cadmium transfer along the lettuce-snail food chain.

机构信息

Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Ministry of Education, College of Environment, Hohai University, Nanjing, 210098, PR China; Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, 210008, China.

Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Ministry of Education, College of Environment, Hohai University, Nanjing, 210098, PR China.

出版信息

Chemosphere. 2018 Nov;211:81-88. doi: 10.1016/j.chemosphere.2018.07.141. Epub 2018 Jul 23.

Abstract

Metal bioavailability at root plasma membrane surfaces and chemical forms within cells putatively controls the trophic transfer processes. Accumulation and distribution of Cu or Cd in lettuce were investigated as a function of lettuce leaf aging through soil-solution culture experiments. Metal contents in snail tissues were examined after fed on young (interior) or old (exterior) age leaves for 15d, respectively. In both roots and leaves, Cu accumulation was higher than Cd by 3-90 fold. Regardless of 9.42 μmoL/L CuCl exposure, young leaves accumulated more Cu than old leaves, while higher Cu contents are found in snail tissues fed on old leaves. Opposite trends were observed for Cd. Copper as an essential element had a higher transfer factor (TF) than the non-essential element Cd in biomagnification from leaf to snail. Reasons involved in metal chemical forms within leaf cells, where higher percentages of toxicity and migration associated metal (Fi: inorganic form, Fii: water-soluble form and Fiii: pectate- and protein-integrated form) are found for Cu in old leaves (88.3-91.6%) and Cd in young leaves (86.8-94.5%). Metal activities at root plasma membrane surfaces ({M}) and chemical forms in Fi + Fii + Fiii linearly correlated with metal accumulation in lettuce and snail tissues (R > 0.900, p < 0.001 for snails fed on old leaves). Our study incorporated both the chemical form approach and {M} into evaluating the trophic bioavailability of different metals along the lettuce-snail chain, which is important for mechanistic understanding of metal behaviors in the ecosystem.

摘要

在根质膜表面和细胞内的化学形态的金属生物有效性,据称控制了营养转移过程。通过土壤-溶液培养实验,研究了铜或镉在生菜中的积累和分布,作为生菜叶片衰老的函数。在分别用幼叶(内部)或老叶(外部)喂养 15 天后,检查了蜗牛组织中的金属含量。在根和叶中,Cu 的积累量是 Cd 的 3-90 倍。无论暴露于 9.42 μmol/L CuCl,幼叶的 Cu 积累量均高于老叶,而在老叶喂养的蜗牛组织中发现了更高的 Cu 含量。Cd 则呈现相反的趋势。铜作为一种必需元素,其生物放大从叶到蜗牛的转移因子(TF)高于非必需元素 Cd。涉及叶片细胞内金属化学形态的原因是,老叶中 Cu(88.3-91.6%)和幼叶中 Cd(86.8-94.5%)的毒性和迁移相关金属(Fi:无机形式、Fii:水溶性形式和 Fiii:果胶和蛋白质整合形式)的百分比更高。根质膜表面的金属活性({M})和 Fi + Fii + Fiii 中的化学形态与生菜和蜗牛组织中金属的积累呈线性相关(对于喂养老叶的蜗牛,R > 0.900,p < 0.001)。我们的研究将化学形态方法和 {M} 纳入了评估不同金属沿着生菜-蜗牛链的营养生物有效性,这对于理解金属在生态系统中的行为的机制非常重要。

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