机构:Ecosystems Research Group,Department of Biological Sciences
Eric K. Miller
Celia Chen
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Celia Chen
Neil Kamman
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Neil Kamman
James Shanley
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
James Shanley
Ann Chalmers
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Ann Chalmers
Brian Jackson
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Brian Jackson
Vivien Taylor
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Vivien Taylor
Eric Smeltzer
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h-index: 0
机构:Ecosystems Research Group,Department of Biological Sciences
Eric Smeltzer
Pete Stangel
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机构:Ecosystems Research Group,Department of Biological Sciences
Pete Stangel
Angela Shambaugh
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机构:Ecosystems Research Group,Department of Biological Sciences
Angela Shambaugh
机构:
[1] Ecosystems Research Group,Department of Biological Sciences
[2] Ltd.,Earth Sciences Department
[3] Dartmouth College,undefined
[4] Vermont Department of Environmental Conservation,undefined
[5] US Geological Survey,undefined
[6] Dartmouth College,undefined
来源:
Ecotoxicology
|
2012年
/
21卷
关键词:
Lake Champlain;
Aquatic;
Mercury;
Zooplankton;
Fish;
D O I:
暂无
中图分类号:
学科分类号:
摘要:
Lake Champlain continues to experience mercury contamination resulting in public advisories to limit human consumption of top trophic level fish such as walleye. Prior research suggested that mercury levels in biota could be modified by differences in ecosystem productivity as well as mercury loadings. We investigated relationships between mercury in different trophic levels in Lake Champlain. We measured inorganic and methyl mercury in water, seston, and two size fractions of zooplankton from 13 sites representing a range of nutrient loading conditions and productivity. Biomass varied significantly across lake segments in all measured ecosystem compartments in response to significant differences in nutrient levels. Local environmental factors such as alkalinity influenced the partitioning of mercury between water and seston. Mercury incorporation into biota was influenced by the biomass and mercury content of different ecosystem strata. Pelagic fish tissue mercury was a function of fish length and the size of the mercury pool associated with large zooplankton. We used these observations to parameterize a model of mercury transfers in the Lake Champlain food web that accounts for ecosystem productivity effects. Simulations using the mercury trophic transfer model suggest that reductions of 25–75% in summertime dissolved eplimnetic total mercury will likely allow fish tissue mercury concentrations to drop to the target level of 0.3 μg g−1 in a 40-cm fish in all lake segments. Changes in nutrient loading and ecosystem productivity in eutrophic segments may delay any response to reduced dissolved mercury and may result in increases in fish tissue mercury.