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Environmental Science & Technology|October 1, 1995
Dissolution and reduction of magnetite by bacteriaJ E Kostka, K H NealsonChemosphere|September 10, 2003
Dehalogenation of 2,6-dibromobiphenyl and 2,3,4,5,6-pentachlorobiphenyl in contaminated estuarine sedimentL D Palekar, K A Maruya, J E Kostka, et al.Applied and Environmental Microbiology|June 1, 2000
Sulfate-reducing bacteria methylate mercury at variable rates in pure culture and in marine sedimentsJ K King, J E Kostka, M E Frischer, et al.Annual Review of Marine Science|September 25, 2014
Microbial responses to the Deepwater Horizon oil spill: from coastal wetlands to the deep seaG M King, J E Kostka, T C Hazen, et al.Science (New York, N.Y.)|February 5, 1993
Mediation of sulfur speciation by a black sea facultative anaerobeK A Perry, J E Kostka, G W Luther, et al.Environmental Toxicology and Chemistry|January 5, 2002
Fate of atrazine and alachlor in redox-treated ferruginous smectiteJ C Xu, J W Stucki, J Wu, et al.Applied and Environmental Microbiology|September 26, 2001
Growth and phylogenetic properties of novel bacteria belonging to the epsilon subdivision of the Proteobacteria enriched from Alvinella pompejana and deep-sea hydrothermal ventsB J Campbell, C Jeanthon, J E Kostka, et al.Environmental Science & Technology|July 4, 2001
A quantitative relationship that demonstrates mercury methylation rates in marine sediments are based on the community composition and activity of sulfate-reducing bacteriaJ K King, J E Kostka, M E Frischer, et al.Nature Communications|April 29, 2024
Sulfur oxidation and reduction are coupled to nitrogen fixation in the roots of the salt marsh foundation plant Spartina alternifloraJ L Rolando, M Kolton, T Song, et al.Applied and Environmental Microbiology|July 31, 2012
Microbial community structure and activity linked to contrasting biogeochemical gradients in bog and fen environments of the Glacial Lake Agassiz PeatlandX Lin, S Green, M M Tfaily, et al.Pageof 2