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April 3, 2026Environmental Science & Technology2 citations

Rice Arsenic Accumulation Mitigated by Agricultural Sulfur Applications: Insights from Two-Year Mesocosm Experiments and a Meta-Analysis

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SLSuyun LiSLShurong LiuSZShuai Zhang

Key Points

  • This research aims to examine the impact of agricultural sulfur on arsenic accumulation in rice and improve understanding of its mechanisms.
  • Conducted two-year open-air mesocosm experiments.
  • Performed a meta-analysis of sulfur effects on arsenic in various rice systems.
  • Analyzed the relationship between soil parameters and arsenic accumulation in rice grains.
  • Sulfate fertilizers reduced inorganic arsenic concentrations in rice by up to 46%.
  • Total arsenic in rice grain decreased by 37%, leaves by 25%, and stems by 24%.
  • Increased porewater methylated arsenic was noted, but grain concentrations of toxic dimethylarsenate remained unchanged.

Abstract

Arsenic (As) accumulation in rice presents a global health concern, yet the impacts of expanding agricultural sulfur (S) applications on As behavior in rice systems remain inadequately understood. This study integrates two-year open-air mesocosm experiments with global meta-analysis to assess S effects on soil-to-grain As transfer. Mesocosm trials showed that sulfate fertilizers significantly reduced carcinogenic inorganic As (iAs) concentrations in white rice by up to 46% compared to nonsulfur controls, across different soils, irrigation regimes, and seeding practices. Meta-analysis further revealed consistent decreases in total As in grain (37%), leaves (25%), and stems (24%), but not in roots or iron plaque. Sulfur primarily suppressed root-to-grain iAs translocation rather than enhancing direct iron-plaque binding, as indicated by unchanged plaque As/Fe and positive correlations of grain iAs with root and stem As rather than with plaque As. However, sulfate addition increased porewater methylated As and tended to elevate grain dimethylarsenate, a precursor of highly cytotoxic dimethylated monothioarsenate (DMMTA), though grain DMMTA remained unchanged. Mitigation efficacy was more strongly influenced by soil pH and organic carbon than by total soil As. These findings support the targeted use of S fertilization to lower dietary iAs exposure, while emphasizing the importance of speciation-resolved monitoring to minimize unintended toxicological risks.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f005a333a821460dc51https://doi.org/10.1021/acs.est.5c12752
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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