School of Environmental Science and Optoelectronic Technology, University of Science and Technology of China, Hefei 230026, PR China; Anhui Province Key Laboratory of Environmental Toxicology and Pollution Control Technology, Key Laboratory of High Magnetic Field and Ion Beam Physical Biology, CAS, High Magnetic Field Laboratory, Hefei Institutes of Physical Science, CAS, Hefei, Anhui, 230031, PR China.
Anhui Province Key Laboratory of Environmental Toxicology and Pollution Control Technology, Key Laboratory of High Magnetic Field and Ion Beam Physical Biology, CAS, High Magnetic Field Laboratory, Hefei Institutes of Physical Science, CAS, Hefei, Anhui, 230031, PR China.
Sci Total Environ. 2024 Aug 25;940:173641. doi: 10.1016/j.scitotenv.2024.173641. Epub 2024 May 31.
From both environment and health perspectives, sustainable management of ever-growing soil contamination by heavy metal is posing a serious global concern. The potential ecotoxicity of cadmium (Cd) to soil and ecosystem seriously threatens human health. Developing efficient, specific, and long-term remediation technology for Cd-contaminated soil is impending to synchronously minimize the bioavailability and ecotoxicity of Cd. In the present study, zinc oxide/graphene oxide nanocomposite (ZnO/GO) was developed as a novel amendment for remediating Cd-contaminated soil. Our results showed that ZnO/GO effectively decreased the available soil Cd content, and increased pH and cation exchange capacity (CEC) in both Cd-spiked standard soil and Cd-contaminated mine field soil through the interaction between ZnO/GO and soil organic acids. Using Caenorhabditis elegans (C. elegans) as a model organism for soil safety evaluation, ZnO/GO was further proved to decrease the ecotoxicity of Cd-contaminated soil. Specifically, ZnO/GO promoted Cd excretion and declined Cd storage in C. elegans by increasing the expression of gene ttm-1 and decreasing the level of gene cdf-2, which were responsible for Cd transportation and Cd accumulation, respectively. Moreover, the efficacy of ZnO/GO in remediating the properties and ecotoxicity of Cd-contaminated soil increased gradually with the time gradient, and could maintain a long-term effect after reaching the optimal remediation efficiency. Our findings established a specific and long-term strategy to simultaneously improve soil properties and reduce ecotoxicity of Cd-contaminated soil, which might provide new insights into the potential application of ZnO/GO in soil remediation for both ecosystem and human health.
从环境和健康的角度来看,对重金属不断增长的土壤污染进行可持续管理正成为一个严重的全球性问题。镉 (Cd) 对土壤和生态系统的潜在生态毒性严重威胁着人类健康。开发高效、特异、长期的镉污染土壤修复技术迫在眉睫,以同步降低 Cd 的生物可利用性和生态毒性。在本研究中,开发了氧化锌/氧化石墨烯纳米复合材料(ZnO/GO)作为一种修复 Cd 污染土壤的新型改良剂。我们的结果表明,ZnO/GO 通过与土壤有机酸相互作用,有效降低了 Cd 污染标准土壤和 Cd 污染矿区土壤中有效土壤 Cd 含量,提高了 pH 值和阳离子交换量 (CEC)。利用秀丽隐杆线虫(C. elegans)作为土壤安全性评价的模型生物,进一步证明 ZnO/GO 降低了 Cd 污染土壤的生态毒性。具体而言,ZnO/GO 通过增加基因 ttm-1 的表达和降低基因 cdf-2 的水平,促进了 Cd 的排泄,减少了 Cd 在 C. elegans 中的储存,基因 ttm-1 和基因 cdf-2 分别负责 Cd 的运输和 Cd 的积累。此外,ZnO/GO 修复 Cd 污染土壤的性能和生态毒性的效果随着时间梯度逐渐增加,在达到最佳修复效率后可以保持长期效果。我们的研究结果建立了一种特异、长期的策略,可同时改善土壤性质和降低 Cd 污染土壤的生态毒性,这可能为 ZnO/GO 在生态系统和人类健康保护方面的土壤修复中的潜在应用提供新的思路。