School of Environmental Science and Engineering, Shandong University, Qingdao 266237, China.
Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Sci Total Environ. 2022 Oct 1;841:156558. doi: 10.1016/j.scitotenv.2022.156558. Epub 2022 Jun 13.
Methylmercury (MeHg), a potent neurotoxin, can be formed, migrated and transformed in environmental compartments, accompanying with unique mass-dependent and mass-independent fractionation of mercury (Hg). These Hg isotope fractionation signals have great potential to probe the transformation and transport of MeHg in aquatic environments. However, the majority of studies to date have focused on total Hg isotopic composition, with less attention to the isotopic fractionation of MeHg due to technical difficulties in analysis, which severely hinders the understanding of MeHg isotopic fractionation and its applications. This review a) evaluates the reported analytical methods for Hg isotopic composition of MeHg, including online and offline measurement techniques; b) summarizes the extent and characteristics of Hg isotopic fractionation during MeHg transport and transformation, focusing on methylation, demethylation, trophic transfer and internal metabolism; and c) briefly discusses several applications of MeHg isotopic fractionation signatures in estimating the extent of photodemethylation, tracing the source of Hg species, and diagnosing reaction mechanisms. Additionally, the existing problems and future directions in MeHg isotope fractionation are highlighted to improve the analytical protocol for Hg isotope fractionation and deepen our understanding of Hg isotope fractionation in the biogeochemical cycling of MeHg.
甲基汞(MeHg)是一种强效神经毒素,能够在环境介质中形成、迁移和转化,并伴随着汞(Hg)独特的质量依赖和质量无关的分馏。这些 Hg 同位素分馏信号具有很大的潜力,可以用来探测 MeHg 在水生环境中的转化和传输。然而,迄今为止,大多数研究都集中在总 Hg 同位素组成上,由于分析技术上的困难,对 MeHg 的同位素分馏关注较少,这严重阻碍了对 MeHg 同位素分馏的理解及其应用。本综述:a)评估了已报道的 MeHg 汞同位素组成的分析方法,包括在线和离线测量技术;b)总结了 MeHg 运输和转化过程中 Hg 同位素分馏的程度和特征,重点关注甲基化、去甲基化、营养转移和内部代谢;c)简要讨论了 MeHg 同位素分馏特征在估计光去甲基化程度、追踪 Hg 物种来源和诊断反应机制方面的几个应用。此外,还强调了 MeHg 同位素分馏中存在的问题和未来方向,以改进 Hg 同位素分馏的分析方案,并加深我们对 MeHg 生物地球化学循环中 Hg 同位素分馏的理解。