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Applied and Environmental Microbiology, July 2005, p. 3928-3934, Vol. 71, No. 7
0099-2240/05/$08.00+0     doi:10.1128/AEM.71.7.3928-3934.2005
Copyright © 2005, American Society for Microbiology. All Rights Reserved.

Reduction of Perchlorate and Nitrate by Microbial Communities in Vadose Soil

Mamie Nozawa-Inoue,* Kate M. Scow, and Dennis E. Rolston

Department of Land, Air, and Water Resources, University of California, Davis, California

Received 22 September 2004/ Accepted 7 February 2005

Perchlorate contamination is a concern because of the increasing frequency of its detection in soils and groundwater and its presumed inhibitory effect on human thyroid hormone production. Although significant perchlorate contamination occurs in the vadose (unsaturated) zone, little is known about perchlorate biodegradation potential by indigenous microorganisms in these soils. We measured the effects of electron donor (acetate and hydrogen) and nitrate addition on perchlorate reduction rates and microbial community composition in microcosm incubations of vadose soil. Acetate and hydrogen addition enhanced perchlorate reduction, and a longer lag period was observed for hydrogen (41 days) than for acetate (14 days). Initially, nitrate suppressed perchlorate reduction, but once perchlorate started to be degraded, the process was stimulated by nitrate. Changes in the bacterial community composition were observed in microcosms enriched with perchlorate and either acetate or hydrogen. Denaturing gradient gel electrophoresis analysis and partial sequencing of 16S rRNA genes recovered from these microcosms indicated that formerly reported perchlorate-reducing bacteria were present in the soil and that microbial community compositions were different between acetate- and hydrogen-amended microcosms. These results indicate that there is potential for perchlorate bioremediation by native microbial communities in vadose soil.


* Corresponding author. Mailing address: Department of Land, Air, and Water Resources, University of California, Davis, One Shields Avenue, Davis, CA 95616. Phone: (530) 752-0146. Fax: (530) 752-1552. E-mail: minoue{at}ucdavis.edu.


Applied and Environmental Microbiology, July 2005, p. 3928-3934, Vol. 71, No. 7
0099-2240/05/$08.00+0     doi:10.1128/AEM.71.7.3928-3934.2005
Copyright © 2005, American Society for Microbiology. All Rights Reserved.




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