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An Anaerobic Biosensor Assay for the Detection of Mercury and Cadmium
Published on: December 17, 2018
Microbial methylation of particulate-bound mercury in water column and its underlying mechanisms: A critical review
Weihua Fan1, Mengxuan Kou2, Yixiang Wang2
1School of Environment, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024, China; Laboratory of Environmental Nanotechnology and Health Effect, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China; State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Due to the bioaccumulation and biomagnification of methylmercury (MeHg) within aquatic food web, it poses a significant threat to ecology and human health. Consequently, the methylation process of inorganic mercury (Hg) in aquatic systems has long been a focus of research. Although early research suggested that bottom sediments were the principal hotspot for microbial MeHg production, recent evidence highlighted that Hg methylation in water column constituted a non-negligible source, especially in oceans and deep lakes, where suspended particulate matter plays a crucial role in this process. This review summarizes current fundamental understanding of the methylation of particulate-bound mercury (HgP), particularly in marine and deep lakes. Some studies reported both significantly higher MeHg concentrations and methylation rates/ratios in suspended particulate matter compared to underlying sediments. Methylation on suspended particulate matter in the ocean appeared primarily mediated by specific Nitrospina, rather than the previously emphasized Deltaproteobacteria, Firmicutes, and Chloroflexi. Furthermore, this review details the possible mechanisms facilitating HgP methylation. We propose that suspended particulate matter may enhance Hg methylation through microbe-Hg interaction by several pathways: (1) Providing anaerobic microenvironments and essential nutrients to support the growth of methylators, (2) Facilitating ligand exchange between HgP and methylators via intimate contact, (3) Enabling direct uptake of small-sized particulate matter, and (4) Reducing Hg aging on bacterial surfaces. Elucidating these mechanisms in further study would advance our understanding of methylation of HgP in the water column.
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