水稻土中水合铁含量影响水稻籽粒中无机砷的种类。

IF 3.9 3区 环境科学与生态学 Q1 CHEMISTRY, ANALYTICAL
Arindam Malakar, Daniel D Snow, Michael Kaiser, Harkamal Walia, Trenton L Roberts, Chittaranjan Ray
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引用次数: 0

摘要

全球约50%的人口食用水稻,水稻主要生长在水田中,易受砷积累的影响。无机砷,特别是还原形式的砷(As(III))被认为是毒性最大的,在淹水系统下更有可能积聚在米粒中。我们假设,水稻土中高活性铁矿物(如水合铁)水平的增加可以调节砷的生物利用度,并通过引发铁斑块的形成来减少砷的吸收。为了澄清,两个水稻品种,Norin和Sabharaj,在砷吸收速率不同的情况下,在砷酸盐(As(V))灌溉水的淹水条件下在水稻土中生长。分别以0.00%(对照)、0.05%和0.10% w/w加入2系水合铁作为高活性铁种。无论何种水稻品种,与对照相比,水合铁体系中谷物中的无机砷(As(III) + As(V))总量下降了85%至93%。这些结果支持水合铁在水稻土根际化学控制中的内在作用。我们的研究结果表明,新鲜的活性铁矿物在根铁斑块的早期形成中起着关键作用,从而增强了对砷的防御机制。这一发现可能对减少有毒无机砷在低地水稻中的积累具有启示意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ferrihydrite level in paddy soil affects inorganic arsenic species in rice grains.

Rice is consumed by ∼50% of the global population, grown primarily in flooded paddy fields, and is susceptible to arsenic accumulation. Inorganic arsenic, particularly in reduced form (As(III)), is considered the most toxic and is more likely to accumulate in rice grains under flooded systems. We postulate that increased levels of highly reactive iron minerals, such as ferrihydrite, in paddy soils can regulate the bioavailability of arsenic and reduce its uptake by priming iron plaque formation. To clarify, two rice varieties, Norin and Sabharaj, differing in arsenic uptake rate, were grown in paddy soil under flooded conditions with arsenate (As(V)) spiked-irrigation water. 2-line ferrihydrite was added at 0.00% (control), 0.05%, and 0.10% w/w and served as the highly reactive iron species. Irrespective of rice varieties, total inorganic arsenic (As(III) + As(V)) in grains in ferrihydrite systems decreased by 85 to 93% compared to the control. These results support ferrihydrite's intrinsic role in controlling paddy soils' rhizosphere chemistry. Our findings indicate that fresh reactive iron minerals are critical in the early formation of root iron plaque, which enhances the defense mechanism against arsenic. The findings may have implications for reducing toxic inorganic arsenic accumulation in lowland rice.

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来源期刊
Environmental Science: Processes & Impacts
Environmental Science: Processes & Impacts CHEMISTRY, ANALYTICAL-ENVIRONMENTAL SCIENCES
CiteScore
9.50
自引率
3.60%
发文量
202
审稿时长
1 months
期刊介绍: Environmental Science: Processes & Impacts publishes high quality papers in all areas of the environmental chemical sciences, including chemistry of the air, water, soil and sediment. We welcome studies on the environmental fate and effects of anthropogenic and naturally occurring contaminants, both chemical and microbiological, as well as related natural element cycling processes.
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