硅介导的水稻镉污染控制:机制和进展(2000-2024)。

IF 3.8 3区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Nuoyu Xiang, Kunwu Jiang, Jie Hu, Xiaonan Qin, Yuanyuan Cheng
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引用次数: 0

摘要

许多研究探讨了硅(Si)对水稻镉(Cd)积累的影响,但缺乏对硅的修复效果及其分子机制的全面评估。本文综述了近25年来硅对镉胁迫的影响,重点阐述了硅对镉吸收、转运和积累的影响,为利用硅修复镉污染土壤和水稻安全生产提供理论支持和技术指导。土壤和叶面施硅均可减少水稻籽粒Cd的积累,其中硅通过改善水稻在Cd胁迫下的生理状态、调节激素水平、增强抗氧化酶活性、促进Cd对细胞壁的螯合作用、减少细胞损伤,在控制植株内Cd方面发挥了显著作用。Si还调节Cd转运蛋白的表达,其中有10个已确定,其中5个特别重要:OsHMA2、OsNramp1、OsNramp5、OsZIP6和OsZIP7。另外6种蛋白质与Si的关系尚未得到证实,需要进一步研究。关于硅如何协调镉转运蛋白、抗氧化防御系统、植物激素等多种因子的相互作用,全面增强水稻抗镉胁迫能力的研究仍然有限。结果表明,水稻叶面施用硅对降低镉含量更有效,而在重度镉污染土壤中,土壤施用硅更有效。未来深入了解硅在该网络中的作用,不仅有助于揭示其多方面的保护机制,而且为制定更有效的策略来减轻重金属污染提供新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Silicon-mediated control of cadmium contamination in rice: mechanisms and advances (2000-2024).

Many studies have explored silicon's (Si) impact on cadmium (Cd) accumulation in rice, but a comprehensive assessment of Si's remediation efficacy and its molecular mechanisms is lacking. This review synthesizes 25 years of research on Si's role in mitigating Cd stress, focusing on how Si application affects Cd absorption, transport, and accumulation to provide theoretical support and technical guidance for using Si in the remediation of Cd-contaminated soils and safe rice production. Both soil and foliar applications of Si fertilizers reduce Cd accumulation in rice grains, with Si showing significant effects in controlling Cd within the plant by improving rice's physiological condition under Cd stress, adjusting hormone levels, enhancing antioxidant enzyme activity, and promoting Cd chelation to the cell wall, reducing cellular damage. Si also regulates the expression of Cd transport proteins, with ten identified, five of which are particularly crucial: OsHMA2, OsNramp1, OsNramp5, OsZIP6, and OsZIP7. Six other proteins' relationship with Si remains unconfirmed and requires further investigation. Research on how Si coordinates interactions among various factors such as Cd transport proteins, antioxidant defence systems, and plant hormones to comprehensively enhance rice's resistance to Cd stress is still limited. It was revealed that foliar application of Si is more effective in reducing Cd levels in rice, while in heavily Cd-contaminated soils, soil application of Si is more effective. Future in-depth understanding of Si's role in this network will not only help reveal its multifaceted protective mechanisms but also provide new perspectives for developing more effective strategies to mitigate heavy metal pollution.

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来源期刊
Environmental Geochemistry and Health
Environmental Geochemistry and Health 环境科学-工程:环境
CiteScore
8.00
自引率
4.80%
发文量
279
审稿时长
4.2 months
期刊介绍: Environmental Geochemistry and Health publishes original research papers and review papers across the broad field of environmental geochemistry. Environmental geochemistry and health establishes and explains links between the natural or disturbed chemical composition of the earth’s surface and the health of plants, animals and people. Beneficial elements regulate or promote enzymatic and hormonal activity whereas other elements may be toxic. Bedrock geochemistry controls the composition of soil and hence that of water and vegetation. Environmental issues, such as pollution, arising from the extraction and use of mineral resources, are discussed. The effects of contaminants introduced into the earth’s geochemical systems are examined. Geochemical surveys of soil, water and plants show how major and trace elements are distributed geographically. Associated epidemiological studies reveal the possibility of causal links between the natural or disturbed geochemical environment and disease. Experimental research illuminates the nature or consequences of natural or disturbed geochemical processes. The journal particularly welcomes novel research linking environmental geochemistry and health issues on such topics as: heavy metals (including mercury), persistent organic pollutants (POPs), and mixed chemicals emitted through human activities, such as uncontrolled recycling of electronic-waste; waste recycling; surface-atmospheric interaction processes (natural and anthropogenic emissions, vertical transport, deposition, and physical-chemical interaction) of gases and aerosols; phytoremediation/restoration of contaminated sites; food contamination and safety; environmental effects of medicines; effects and toxicity of mixed pollutants; speciation of heavy metals/metalloids; effects of mining; disturbed geochemistry from human behavior, natural or man-made hazards; particle and nanoparticle toxicology; risk and the vulnerability of populations, etc.
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