Soil Geobacteraceae are the key predictors of neurotoxic methylmercury bioaccumulation in rice

IF 23.6 Q1 FOOD SCIENCE & TECHNOLOGY
Huan Zhong, Wenli Tang, Zizhu Li, Christian Sonne, Su Shiung Lam, Xiao Zhang, Sae Yun Kwon, Jörg Rinklebe, Luís M. Nunes, Ri-Qing Yu, Baohua Gu, Holger Hintelmann, Martin Tsz-Ki Tsui, Jiating Zhao, Xin-Quan Zhou, Mengjie Wu, Beibei Liu, Yunyun Hao, Long Chen, Baogang Zhang, Wenfeng Tan, Xu-Xiang Zhang, Hongqiang Ren, Yu-Rong Liu
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Abstract

Contamination of rice by the potent neurotoxin methylmercury (MeHg) originates from microbe-mediated Hg methylation in soils. However, the high diversity of Hg methylating microorganisms in soils hinders the prediction of MeHg formation and challenges the mitigation of MeHg bioaccumulation via regulating soil microbiomes. Here we explored the roles of various cropland microbial communities in MeHg formation in the potentials leading to MeHg accumulation in rice and reveal that Geobacteraceae are the key predictors of MeHg bioaccumulation in paddy soil systems. We characterized Hg methylating microorganisms from 67 cropland ecosystems across 3,600 latitudinal kilometres. The simulations of a rice-paddy biogeochemical model show that MeHg accumulation in rice is 1.3–1.7-fold more sensitive to changes in the relative abundance of Geobacteraceae compared to Hg input, which is recognized as the primary parameter in controlling MeHg exposure. These findings open up a window to predict MeHg formation and accumulation in human food webs, enabling more efficient mitigation of risks to human health through regulations of key soil microbiomes. Neurotoxic methylmercury (MeHg) in rice poses health risks. This study explores the roles of various cropland microbial communities in MeHg formation on a large scale and identifies that Geobacteraceae are the key predictors of MeHg bioaccumulation in paddy soil systems, which holds the potential for mitigating global mercury exposure.

Abstract Image

Abstract Image

土壤地杆菌科是预测水稻神经毒性甲基汞生物累积的关键因素
水稻受到强效神经毒素甲基汞(MeHg)的污染源于土壤中微生物介导的汞甲基化作用。然而,土壤中甲基化汞微生物的高度多样性阻碍了对甲基汞形成的预测,并对通过调节土壤微生物群来减轻甲基汞的生物累积提出了挑战。在此,我们探讨了各种耕地微生物群落在甲基汞形成过程中的作用,以及导致水稻甲基汞积累的潜力,并揭示了革囊菌科是预测水稻土壤系统中甲基汞生物累积的关键因素。我们对来自 3,600 个纬度公里的 67 个耕地生态系统中的甲基汞甲基化微生物进行了特征描述。水稻-稻田生物地球化学模型的模拟结果表明,与汞输入量相比,甲基汞在水稻中的积累对革菌属相对丰度变化的敏感性高出 1.3-1.7 倍,而革菌属是控制甲基汞暴露的主要参数。这些发现为预测甲基汞在人类食物网中的形成和积累打开了一扇窗,从而可以通过对关键土壤微生物群的调控,更有效地降低对人类健康的风险。
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CiteScore
28.50
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