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In-Reservoir Physical Processes Modulate Aqueous and Biological Methylmercury Export from a Seasonally Anoxic Reservoir

Title: In-Reservoir Physical Processes Modulate Aqueous and Biological Methylmercury Export from a Seasonally Anoxic Reservoir
Authors: Baldwin, Austin K; Eagles-Smith, Collin A; Willacker, James J; Poulin, Brett A; Krabbenhoft, David P; Naymik, Jesse; Tate, Michael T; Bates, Dain; Gastelecutto, Nick; Hoovestol, Charles; Larsen, Chris; Yoder, Alysa M; Chandler, James; Myers, Ralph
Source: Environmental Science and Technology, vol 56, iss 19
Publisher Information: eScholarship, University of California
Publication Year: 2022
Collection: University of California: eScholarship
Subject Terms: 41 Environmental Sciences (for-2020); 4105 Pollution and Contamination (for-2020); Environmental Monitoring (mesh); Food Chain (mesh); Humans (mesh); Hypoxia (mesh); Mercury (mesh); Methylmercury Compounds (mesh); Oxygen (mesh); Rivers (mesh); Water (mesh); Water Pollutants; Chemical (mesh); zooplankton; suspended sediment; destratification; biological uptake; bioaccumulation; aquatic food web; methylation; anoxia
Subject Geographic: 13751 - 13760
Description: Anoxic conditions within reservoirs related to thermal stratification and oxygen depletion lead to methylmercury (MeHg) production, a key process governing the uptake of mercury in aquatic food webs. Once formed within a reservoir, the timing and magnitude of the biological uptake of MeHg and the relative importance of MeHg export in water versus biological compartments remain poorly understood. We examined the relations between the reservoir stratification state, anoxia, and the concentrations and export loads of MeHg in aqueous and biological compartments at the outflow locations of two reservoirs of the Hells Canyon Complex (Snake River, Idaho-Oregon). Results show that (1) MeHg concentrations in filter-passing water, zooplankton, suspended particles, and detritus increased in response to reservoir destratification; (2) zooplankton MeHg strongly correlated with MeHg in filter-passing water during destratification; (3) reservoir anoxia appeared to be a key control on MeHg export; and (4) biological MeHg, primarily in zooplankton, accounted for only 5% of total MeHg export from the reservoirs (the remainder being aqueous compartments). These results improve our understanding of the role of biological incorporation of MeHg and the subsequent downstream release from seasonally stratified reservoirs and demonstrate that in-reservoir physical processes strongly influence MeHg incorporation at the base of the aquatic food web.
Document Type: article in journal/newspaper
File Description: application/pdf
Language: unknown
Relation: qt43f0j75r; https://escholarship.org/uc/item/43f0j75r; https://escholarship.org/content/qt43f0j75r/qt43f0j75r.pdf
DOI: 10.1021/acs.est.2c03958
Availability: https://escholarship.org/uc/item/43f0j75r; https://escholarship.org/content/qt43f0j75r/qt43f0j75r.pdf; https://doi.org/10.1021/acs.est.2c03958
Rights: CC-BY-NC-ND
Accession Number: edsbas.ACF3E6BE
Database: BASE