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Applied and Environmental Microbiology|July 1, 1992
Reductive dechlorination of chlorophenols by a pentachlorophenol- acclimated methanogenic consortiumD K Nicholson, S L Woods, J D Istok, et al.Environmental Science & Technology|October 17, 2002
In situ transformation of deuterated toluene and xylene to benzylsuccinic acid analogues in BTEX-contaminated aquifersD E Reusser, J D Istok, H R Beller, et al.Ground Water|June 30, 2007
An experimental investigation of nitrogen gas produced during denitrificationJ D Istok, M M Park, A D Peacock, et al.Applied and Environmental Microbiology|July 1, 1993
Microcosm and in situ field studies of enhanced biotransformation of trichloroethylene by phenol-utilizing microorganismsG D Hopkins, L Semprini, P L McCartyBiodegradation|November 6, 2001
Bioaugmentation of butane-utilizing microorganisms to promote cometabolism of 1,1,1-trichloroethane in groundwater microcosmsP Jitnuyanont, L A Sayavedra-Soto, L SempriniApplied and Environmental Microbiology|October 3, 1999
Diversity in butane monooxygenases among butane-grown bacteriaN Hamamura, R T Storfa, L Semprini, et al.Journal of Hazardous Materials|January 9, 2020
Spatially-distinct redox conditions and degradation rates following field-scale bioaugmentation for RDX-contaminated groundwater remediationM M Michalsen, A S King, J D Istok, et al.Chemosphere|May 21, 2018
Effects of short- and long-term exposure of silver nanoparticles and silver ions to Nitrosomonas europaea biofilms and planktonic cellsL K Barker, J R Giska, T S Radniecki, et al.Applied and Environmental Microbiology|March 15, 2006
Chloroform Cometabolism by Butane-Grown CF8, Pseudomonas butanovora, and Mycobacterium vaccae JOB5 and Methane-Grown Methylosinus trichosporium OB3bN Hamamura, C Page, T Long, et al.Microbial Ecology|March 3, 2004
Utilization of microbial biofilms as monitors of bioremediationA D Peacock, Y J Chang, J D Istok, et al.Pageof 14