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Applied and Environmental Microbiology, January 2006, p. 622-627, Vol. 72, No. 1
0099-2240/06/$08.00+0     doi:10.1128/AEM.72.1.622-627.2006
Copyright © 2006, American Society for Microbiology. All Rights Reserved.

Slow-Release Inoculation Allows Sustained Biodegradation of {gamma}-Hexachlorocyclohexane

Birgit Mertens, Nico Boon, and Willy Verstraete*

Laboratory of Microbial Ecology and Technology, Ghent University, Coupure Links 653, B-9000 Ghent, Belgium

Received 14 July 2005/ Accepted 28 October 2005

This study investigated the feasibility of a slow-release inoculation approach as a bioaugmentation strategy for the degradation of lindane ({gamma}-hexachlorocyclohexane [{gamma}-HCH]). Slow-release inoculation of Sphingomonas sp. {gamma} 1-7 was established in both liquid and soil slurry microcosms using open-ended silicone tubes in which the bacteria are encapsulated in a protective nutrient-rich matrix. The capacity of the encapsulated cells to degrade lindane under aerobic conditions was evaluated in comparison with inoculation of free-living cells. Encapsulation of cells in tubes caused the removal of lindane by adsorption to the silicone tubes but also ensured prolonged biodegradation activity. Lindane degradation persisted 2.2 and 1.4 times longer for liquid and soil slurry microcosms, respectively, than that for inoculation with free cells. While inoculation of free-living cells led to a loss in lindane-degrading activity in limited time intervals, encapsulation in tubes allowed for a more stable actively degrading community. The loss in degrading activity was linked to the loss of the linA gene, encoding {gamma}-HCH dehydrochlorinase (LinA), which is involved in the initial steps of the lindane degradation pathway. This work shows that a slow-release inoculation approach using a catabolic strain encapsulated in open-ended tubes is a promising bioaugmentation tool for contaminated sites, as it can enhance pollutant removal and can prolong the degrading activity in comparison with traditional inoculation strategies.


* Corresponding author. Mailing address: Ghent University, Laboratory of Microbial Ecology and Technology, Coupure Links 653, B-9000 Ghent, Belgium. Phone: 32 (0)9 264 59 76. Fax: 32 (0)9 264 62 48. E-mail: Willy.Verstraete{at}UGent.be


Applied and Environmental Microbiology, January 2006, p. 622-627, Vol. 72, No. 1
0099-2240/06/$08.00+0     doi:10.1128/AEM.72.1.622-627.2006
Copyright © 2006, American Society for Microbiology. All Rights Reserved.







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