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Applied and Environmental Microbiology|November 6, 2004
Redox transformations of arsenic oxyanions in periphyton communitiesThomas R Kulp, Shelley E Hoeft, Ronald S Oremland
Applied and Environmental Microbiology|June 1, 2010
Coupled arsenotrophy in a hot spring photosynthetic biofilm at Mono Lake, CaliforniaShelley E Hoeft, Thomas R Kulp, Sukkyun Han, et al.
Biochemical and Biophysical Research Communications|March 17, 2009
Respiratory arsenate reductase as a bidirectional enzymeChristine Richey, Peter Chovanec, Shelley E Hoeft, et al.
Applied and Environmental Microbiology|September 27, 2002
Anaerobic oxidation of arsenite in Mono Lake water and by a facultative, arsenite-oxidizing chemoautotroph, strain MLHE-1Ronald S Oremland, Shelley E Hoeft, Joanne M Santini, et al.
Science (New York, N.Y.)|May 28, 2005
A microbial arsenic cycle in a salt-saturated, extreme environmentRonald S Oremland, Thomas R Kulp, Jodi Switzer Blum, et al.
FEMS Microbiology Ecology|August 28, 2009
Dissimilatory arsenate reductase activity and arsenate-respiring bacteria in bovine rumen fluid, hamster feces, and the termite hindgutMitchell J Herbel, Jodi Switzer Blum, Shelley E Hoeft, et al.
International Journal of Systematic and Evolutionary Microbiology|March 3, 2007
Alkalilimnicola ehrlichii sp. nov., a novel, arsenite-oxidizing haloalkaliphilic gammaproteobacterium capable of chemoautotrophic or heterotrophic growth with nitrate or oxygen as the electron acceptorShelley E Hoeft, Jodi Switzer Blum, John F Stolz, et al.
Science (New York, N.Y.)|December 4, 2010
A bacterium that can grow by using arsenic instead of phosphorusFelisa Wolfe-Simon, Jodi Switzer Blum, Thomas R Kulp, et al.
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