甲基汞
生物地球化学循环
镉
环境化学
孵化
土壤水分
水田
环境科学
污染
化学
Mercury(编程语言)
微生物种群生物学
溶解有机碳
有机质
农学
矿化(土壤科学)
生态学
土壤污染
污染
生物地球化学
生物浓缩
氧化还原
微生物代谢
湿地
土壤分类
土壤有机质
生物累积
作者
Qiang Pu,Zhengdong Hao,Qianshuo Zhang,Kun Zhang,Bo Meng,Xinbin Feng
标识
DOI:10.1021/acs.est.5c12718
摘要
Methylmercury (MeHg) in rice poses significant health risks to populations with rice-based diets. While cadmium (Cd) contamination of paddy soils is widespread, its role in influencing MeHg accumulation in rice remains unclear. We combined a nationwide survey of 103 rice paddies with controlled pot and incubation experiments to examine how Cd affects MeHg in soils and rice grains. Soil geochemical parameters, microbial community composition, and horizontal gene transfer (HGT) of functional genes were analyzed to disentangle biological and geochemical mechanisms. Across field sites, Cd concentrations were positively associated with rice MeHg levels, independent of total Hg. Pot and incubation experiments confirmed that Cd exposure increased MeHg levels in soils and grains. This enhancement was mediated by both microbial and geochemical pathways: Cd reshaped microbial communities, promoted HGT that conferred Cd resistance to Hg-methylating bacteria, and altered soil redox potential and dissolved organic carbon, thereby creating conditions favorable for Hg methylation. Our findings reveal Cd as a previously overlooked driver of MeHg risk in rice agroecosystems. Given the co-occurrence of Cd and Hg pollution in global rice-growing regions, integrated management of multiple metals is needed to mitigate MeHg exposure through rice consumption.
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