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土壤中锌与砷的相互作用:溶解度、毒性及吸收

Zinc-arsenic interactions in soil: Solubility, toxicity and uptake.

作者信息

Kader Mohammed, Lamb Dane T, Wang Liang, Megharaj Mallavarapu, Naidu Ravi

机构信息

Global Centre for Environmental Research (GCER), Faculty of Science, The University of Newcastle, Callaghan, Advanced Technology Building, NSW 2308, Australia; Cooperative Research Centre for Contamination Assessment and Remediation of the Environment (CRC CARE), Advanced Technology Building, Callaghan, NSW 2308, Australia.

Global Centre for Environmental Research (GCER), Faculty of Science, The University of Newcastle, Callaghan, Advanced Technology Building, NSW 2308, Australia; Cooperative Research Centre for Contamination Assessment and Remediation of the Environment (CRC CARE), Advanced Technology Building, Callaghan, NSW 2308, Australia.

出版信息

Chemosphere. 2017 Nov;187:357-367. doi: 10.1016/j.chemosphere.2017.08.093. Epub 2017 Aug 21.

Abstract

Arsenic (As) and zinc (Zn) are common co-contaminants in mining impacted soils. Their interaction on solubility and toxicity when present concurrently is not well understood in natural systems. The aim of this study was to observe their interaction in solubility (soil-solution), bioaccumulation (shoot uptake) and toxicity to cucumber (Cucumis sativa L) conducting 4 weeks pot study in 5 different soils spiked with As (0, 2, 4, 8 to 1024 mg kg) individually and with Zn at two phytotoxic doses. The As pore-water concentration was significantly reduced (df = 289, Adjusted R = 0.84, p < 0.01) in the presence of Zn in the whole dataset, whereas Zn and Zn activity in pore-water was reduced significantly only in the two alkaline soils. This outcome may be due to adsorption/surface precipitation or tertiary bridging complexation. No homogenous precipitation of zinc arsenate could be established using electron microscopy, XRD or even equilibrium calculations. For bioaccumulation phase, no significant effect of Zn on As uptake was observed except acidic MG soil whereas, Zn uptake was significantly reduced (p < 0.05) by As in whole dataset. However, an additive response was observed mostly except acidic MG soil. The synergistic response (more than additive) was predominant in this soil for a wide range of inhibition concentration (0-80%) at both Zn EC10 and EC50 levels. Since additive response is mostly considered in risk assessment for mixtures, precautions should be implemented for assessment of toxicity for As-Zn mixture in acidic soil due to their synergistic response in some soils.

摘要

砷(As)和锌(Zn)是受采矿影响土壤中常见的共污染物。在自然系统中,它们同时存在时对溶解度和毒性的相互作用尚未得到充分了解。本研究的目的是通过在5种不同土壤中进行为期4周的盆栽试验,观察它们在溶解度(土壤-溶液)、生物累积(地上部吸收)以及对黄瓜(Cucumis sativa L)毒性方面的相互作用。试验分别单独添加砷(0、2、4、8至1024毫克/千克)以及添加两个植物毒性剂量的锌。在整个数据集中,锌的存在显著降低了砷的孔隙水浓度(自由度=289,调整后R=0.84,p<0.01),而孔隙水中的锌及其活性仅在两种碱性土壤中显著降低。这一结果可能是由于吸附/表面沉淀或三级桥连络合作用。使用电子显微镜、X射线衍射甚至平衡计算都无法确定砷酸锌的均匀沉淀。在生物累积阶段,除了酸性MG土壤外,未观察到锌对砷吸收有显著影响,而在整个数据集中,砷显著降低了锌的吸收(p<0.05)。然而,除了酸性MG土壤外,大多观察到的是加和响应。在该土壤中,在锌的EC10和EC50水平下,广泛的抑制浓度范围(0-80%)内,协同响应(大于加和)占主导。由于在混合物风险评估中大多考虑加和响应,鉴于砷-锌混合物在某些土壤中的协同响应,在评估酸性土壤中砷-锌混合物的毒性时应采取预防措施。

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