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土壤-水稻系统中砷、镉和铅的地球化学形态、吸收及迁移机制:其他方面与挑战

Geochemical Speciation, Uptake, and Transportation Mechanisms of Arsenic, Cadmium, and Lead in Soil-Rice Systems: Additional Aspects and Challenges.

作者信息

Lwin Chaw Su, Jung Ha-Il, Kim Myung-Sook, Lee Eun-Jin, Lee Tae-Gu

机构信息

Soil and Water Environment Division, National Institute of Agricultural Sciences, Rural Development Administration, Wanju 55365, Republic of Korea.

出版信息

Antioxidants (Basel). 2025 May 18;14(5):607. doi: 10.3390/antiox14050607.

DOI:10.3390/antiox14050607
PMID:40427488
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12108791/
Abstract

Potentially toxic elements (PTE), such as cadmium (Cd), lead (Pb), and arsenic (As), threaten rice ( L.) crop productivity and pose significant risks to human health when they are present in soil. This review summarizes the current understanding of soil and rice contamination with As, Cd, and Pb to provide an in-depth understanding of the dynamics of these contaminants and the mechanisms regulating their flow from soil to plants. It focuses on the following aspects: (1) these metals' geochemical distribution and speciation in soil-rice systems; (2) factors influencing the transformation, bioavailability, and uptake of these metals in paddy soils; (3) metal uptake, transport, translocation, and accumulation mechanisms in rice grains; and (4) the roles of transporters involved in metal uptake, transport, and accumulation in rice plants. Moreover, this review contributes to a clearer understanding of the environmental risks associated with these toxic metals in soil-rice ecosystems. Furthermore, it highlights the challenges in simultaneously managing the risks of As, Cd, and Pb contamination in rice. The study findings may help inspire innovative methods, biotechnological applications, and sustainable management strategies to mitigate the accumulation of As, Cd, and Pb in rice grains while effectively addressing multi-metal contamination in paddy soils.

摘要

潜在有毒元素(PTE),如镉(Cd)、铅(Pb)和砷(As),会威胁水稻(Oryza sativa L.)作物的生产力,当它们存在于土壤中时,还会对人类健康构成重大风险。本综述总结了目前对土壤和水稻中砷、镉和铅污染的认识,以深入了解这些污染物的动态以及调节它们从土壤到植物流动的机制。它侧重于以下几个方面:(1)这些金属在土壤-水稻系统中的地球化学分布和形态;(2)影响这些金属在稻田土壤中转化、生物有效性和吸收的因素;(3)水稻籽粒中金属的吸收、运输、转运和积累机制;(4)参与水稻植株中金属吸收、运输和积累的转运蛋白的作用。此外,本综述有助于更清楚地了解土壤-水稻生态系统中与这些有毒金属相关的环境风险。此外,它还强调了同时管理水稻中砷、镉和铅污染风险的挑战。研究结果可能有助于激发创新方法、生物技术应用和可持续管理策略,以减少水稻籽粒中砷、镉和铅的积累,同时有效解决稻田土壤中的多金属污染问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9e7/12108791/b75372d0d638/antioxidants-14-00607-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9e7/12108791/b75372d0d638/antioxidants-14-00607-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9e7/12108791/b75372d0d638/antioxidants-14-00607-g001.jpg

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本文引用的文献

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Cells. 2024 May 24;13(11):907. doi: 10.3390/cells13110907.
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Heavy Metal Exposure: Molecular Pathways, Clinical Implications, and Protective Strategies.重金属暴露:分子途径、临床意义及保护策略。
Antioxidants (Basel). 2024 Jan 5;13(1):76. doi: 10.3390/antiox13010076.
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Alleviated lead toxicity in rice plant by co-augmented action of genome doubling and TiO nanoparticles on gene expression, cytological and physiological changes.
基因组加倍和 TiO2 纳米颗粒的共同增强作用缓解了水稻植株中的铅毒性,影响了基因表达、细胞学和生理学变化。
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OsNRAMP5 Is a Major Transporter for Lead Uptake in Rice.OsNRAMP5 是水稻中铅摄取的主要转运蛋白。
Environ Sci Technol. 2022 Dec 6;56(23):17481-17490. doi: 10.1021/acs.est.2c06384. Epub 2022 Nov 23.
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Exogenously-Sourced Salicylic Acid Imparts Resilience towards Arsenic Stress by Modulating Photosynthesis, Antioxidant Potential and Arsenic Sequestration in Plants.外源水杨酸通过调节植物的光合作用、抗氧化能力和砷螯合作用赋予植物对砷胁迫的抗性。
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Toxics. 2022 Jul 22;10(8):411. doi: 10.3390/toxics10080411.
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Heavy metal accumulation in the surrounding areas affected by mining in China: Spatial distribution patterns, risk assessment, and influencing factors.中国受采矿影响周边地区的重金属积累:空间分布模式、风险评估及影响因素
Sci Total Environ. 2022 Jun 15;825:154004. doi: 10.1016/j.scitotenv.2022.154004. Epub 2022 Feb 19.
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Research Advances in Cadmium Uptake, Transport and Resistance in Rice ( L.).水稻(L.)中镉吸收、转运和抗性的研究进展
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