Literature DB >> 15883668

Perfluorinated compounds in aquatic organisms at various trophic levels in a Great Lakes food chain.

Kurunthachalam Kannan1, Lin Tao, Ewan Sinclair, Stephanie D Pastva, Dave J Jude, John P Giesy.   

Abstract

Trophic transfer of perfluorooctanesulfonate (PFOS) and other related perfluorinated compounds was examined in a Great Lakes benthic foodweb including water-algae-zebra mussel-round goby-smallmouth bass. In addition, perfluorinated compounds were measured in livers and eggs of Chinook salmon and lake whitefish, in muscle tissue of carp, and in eggs of brown trout collected from Michigan. Similarly, green frog livers, snapping turtle plasma, mink livers, and bald eagle tissues were analyzed to determine concentrations in higher trophic-level organisms in the food chain. PFOS was the most widely detected compound in benthic organisms at various trophic levels. Concentrations of PFOS in benthic invertebrates such as amphipods and zebra mussels were approximately 1000-fold greater than those in surrounding water, which suggested a bioconcentration factor (BCF; concentration in biota/concentration in water) of 1000 in benthic invertebrates. Concentrations of PFOS in round gobies were two- to fourfold greater than those in their prey organisms such as zebra mussels and amphipods. Concentrations of PFOS in predatory fishes (Chinook salmon and lake whitefish) were 10 to 20-fold greater than those in their prey species. Concentrations of PFOS in mink and bald eagles were, on average, 5- to 10-fold greater than those in Chinook salmon, carp, or snapping turtles. Because of the accumulation of PFOS in liver and blood, the biomagnification factor (BMF) of perfluorinated compounds in higher trophic-level organisms such as salmonid fishes, mink, and eagles were based on the concentrations in livers or plasma. Overall, these results suggest a BCF of PFOS of approximately 1000 (whole-body based) in benthic invertebrates, and a BMF of 10 to 20 in mink or bald eagles, relative to their prey items. Eggs of fish contained notable concentrations of PFOS, suggesting oviparous transfer of this compound. PFOA was found in water, but its biomagnification potential was lower than that of PFOS.

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Year:  2005        PMID: 15883668     DOI: 10.1007/s00244-004-0133-x

Source DB:  PubMed          Journal:  Arch Environ Contam Toxicol        ISSN: 0090-4341            Impact factor:   2.804


  44 in total

1.  Potential toxicity of environmentally relevant perfluorooctane sulfonate (PFOS) concentrations to yellow-legged gull Larus michahellis embryos.

Authors:  Marco Parolini; Graziano Colombo; Sara Valsecchi; Michela Mazzoni; Cristina Daniela Possenti; Manuela Caprioli; Isabella Dalle-Donne; Aldo Milzani; Nicola Saino; Diego Rubolini
Journal:  Environ Sci Pollut Res Int       Date:  2015-08-27       Impact factor: 4.223

2.  Effects of chronic perfluorooctanoic acid (PFOA) at low concentration on morphometrics, gene expression, and fecundity in zebrafish (Danio rerio).

Authors:  Carrie E Jantzen; Fatima Toor; Kate A Annunziato; Keith R Cooper
Journal:  Reprod Toxicol       Date:  2017-01-29       Impact factor: 3.143

3.  Nontargeted mass-spectral detection of chloroperfluoropolyether carboxylates in New Jersey soils.

Authors:  John W Washington; Charlita G Rosal; James P McCord; Mark J Strynar; Andrew B Lindstrom; Erica L Bergman; Sandra M Goodrow; Haile K Tadesse; Andrew N Pilant; Benjamin J Washington; Mary J Davis; Brittany G Stuart; Thomas M Jenkins
Journal:  Science       Date:  2020-06-05       Impact factor: 47.728

4.  Spatial and interspecific patterns in persistent contaminant loads in bighead and silver carp from the Illinois River.

Authors:  Jeffrey M Levengood; David J Soucek; Amy Dickinson; Gregory G Sass; John M Epifanio
Journal:  Ecotoxicology       Date:  2013-07-26       Impact factor: 2.823

5.  PFAS profiles in three North Sea top predators: metabolic differences among species?

Authors:  Anders Galatius; Rossana Bossi; Christian Sonne; Frank Farsø Rigét; Carl Christian Kinze; Christina Lockyer; Jonas Teilmann; Rune Dietz
Journal:  Environ Sci Pollut Res Int       Date:  2013-03-28       Impact factor: 4.223

6.  Occurrence of Per- and Polyfluoroalkyl Substances (PFAS) in Source Water and Their Treatment in Drinking Water.

Authors:  Brian C Crone; Thomas F Speth; David G Wahman; Samantha J Smith; Gulizhaer Abulikemu; Eric J Kleiner; Jonathan G Pressman
Journal:  Crit Rev Environ Sci Technol       Date:  2019-06       Impact factor: 12.561

7.  Developmental effects of perfluorononanoic Acid in the mouse are dependent on peroxisome proliferator-activated receptor-alpha.

Authors:  Cynthia J Wolf; Robert D Zehr; Judy E Schmid; Christopher Lau; Barbara D Abbott
Journal:  PPAR Res       Date:  2010-09-27       Impact factor: 4.964

8.  Levels of perfluorochemicals in water samples from Catalonia, Spain: is drinking water a significant contribution to human exposure?

Authors:  Ingrid Ericson; Martí Nadal; Bert van Bavel; Gunilla Lindström; José L Domingo
Journal:  Environ Sci Pollut Res Int       Date:  2008-09-02       Impact factor: 4.223

9.  Perfluorinated alkylated substances in vegetables collected in four European countries; occurrence and human exposure estimations.

Authors:  Dorte Herzke; Sandra Huber; Lieven Bervoets; Wendy D'Hollander; Jana Hajslova; Jana Pulkrabova; Gianfranco Brambilla; Stefania Paola De Filippis; Stefanie Klenow; Gerhard Heinemeyer; Pim de Voogt
Journal:  Environ Sci Pollut Res Int       Date:  2013-05-19       Impact factor: 4.223

10.  Biomonitoring perfluorinated compounds in Catalonia, Spain: concentrations and trends in human liver and milk samples.

Authors:  Anna Kärrman; José L Domingo; Xavier Llebaria; Martí Nadal; Esther Bigas; Bert van Bavel; Gunilla Lindström
Journal:  Environ Sci Pollut Res Int       Date:  2009-05-21       Impact factor: 4.223

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