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Mechanistic understanding of MeHg-Se antagonism in soil-rice systems: the key role of antagonism in soil

机译:对MeHg-Se拮抗作用在土壤-水稻系统中的机理理解:拮抗作用在土壤中的关键作用

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摘要

Methylmercury (MeHg) accumulation in rice has great implications for human health. Here, effects of selenium (Se) on MeHg availability to rice are explored by growing rice under soil or foliar fertilization with Se. Results indicate that soil amendment with Se could reduce MeHg levels in soil and grain (maximally 73%). In contrast, foliar fertilization with Se enhanced plant Se levels (3–12 folds) without affecting grain MeHg concentrations. This evidence, along with the distinct distribution of MeHg and Se within the plant, demonstrate for the first time that Se-induced reduction in soil MeHg levels (i.e., MeHg-Se antagonism in soil) rather than MeHg-Se interactions within the plant might be the key process triggering the decreased grain MeHg levels under Se amendment. The reduction in soil MeHg concentrations could be mainly attributed to the formation of Hg-Se complexes (detected by TEM-EDX and XANES) and thus reduced microbial MeHg production. Moreover, selenite and selenate were equally effective in reducing soil MeHg concentrations, possibly because of rapid changes in Se speciation. The dominant role of Se-induced reduction in soil MeHg levels, which has been largely underestimated previously, together with the possible mechanisms advance our mechanistic understanding about MeHg dynamics in soil-rice systems.
机译:稻米中的甲基汞(MeHg)积累对人类健康具有重要意义。在这里,通过在土壤下进行水稻种植或用Se进行叶面施肥来探索硒对水稻中MeHg有效性的影响。结果表明,用Se改良土壤可以降低土壤和谷物中的MeHg水平(最大73%)。相比之下,叶面喷施硒可以提高植物的硒水平(3-12倍),而不会影响谷物中的甲基汞浓度。该证据以及MeHg和Se在植物内的独特分布,首次证明了Se诱导的土壤MeHg水平降低(即土壤中的MeHg-Se拮抗作用),而不是植物内的MeHg-Se相互作用可能是硒修正下触发降低谷物MeHg水平的关键过程。土壤MeHg浓度的降低可能主要归因于Hg-Se复合物的形成(通过TEM-EDX和XANES检测),从而降低了微生物MeHg的产生。此外,亚硒酸盐和硒酸盐在降低土壤中甲基汞浓度方面同样有效,这可能是由于硒形态快速变化所致。 Se引起的土壤MeHg含量降低的主要作用(以前已被低估了)以及可能的机制促进了我们对土壤-水稻系统中MeHg动力学的机械理解。

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