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Impact of Bt Corn on Rhizospheric and Soil Eubacterial Communities and on Beneficial Mycorrhizal Symbiosis in Experimental Microcosms

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Date 2005 Nov 5
PMID 16269702
Citations 37
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Abstract

A polyphasic approach has been developed to gain knowledge of suitable key indicators for the evaluation of environmental impact of genetically modified Bt 11 and Bt 176 corn lines on soil ecosystems. We assessed the effects of Bt corn (which constitutively expresses the insecticidal toxin from Bacillus thuringiensis, encoded by the truncated Cry1Ab gene) and non-Bt corn plants and their residues on rhizospheric and bulk soil eubacterial communities by means of denaturing gradient gel electrophoresis analyses of 16S rRNA genes, on the nontarget mycorrhizal symbiont Glomus mosseae, and on soil respiration. Microcosm experiments showed differences in rhizospheric eubacterial communities associated with the three corn lines and a significantly lower level of mycorrhizal colonization in Bt 176 corn roots. In greenhouse experiments, differences between Bt and non-Bt corn plants were detected in rhizospheric eubacterial communities (both total and active), in culturable rhizospheric heterotrophic bacteria, and in mycorrhizal colonization. Plant residues of transgenic plants, plowed under at harvest and kept mixed with soil for up to 4 months, affected soil respiration, bacterial communities, and mycorrhizal establishment by indigenous endophytes. The multimodal approach utilized in our work may be applied in long-term field studies aimed at monitoring the real hazard of genetically modified crops and their residues on nontarget soil microbial communities.

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References
1.
Smalla K, WIELAND G, Buchner A, Zock A, Parzy J, Kaiser S . Bulk and rhizosphere soil bacterial communities studied by denaturing gradient gel electrophoresis: plant-dependent enrichment and seasonal shifts revealed. Appl Environ Microbiol. 2001; 67(10):4742-51. PMC: 93227. DOI: 10.1128/AEM.67.10.4742-4751.2001. View

2.
Koskella J, Stotzky G . Larvicidal toxins from Bacillus thuringiensis subspp. kurstaki, morrisoni (strain tenebrionis), and israelensis have no microbicidal or microbiostatic activity against selected bacteria, fungi, and algae in vitro. Can J Microbiol. 2002; 48(3):262-7. DOI: 10.1139/w02-005. View

3.
Sturz A, Matheson B, Arsenault W, Kimpinski J, Christie B . Weeds as a source of plant growth promoting rhizobacteria in agricultural soils. Can J Microbiol. 2002; 47(11):1013-24. DOI: 10.1139/w01-110. View

4.
Gyamfi S, Pfeifer U, Stierschneider M, Sessitsch A . Effects of transgenic glufosinate-tolerant oilseed rape (Brassica napus) and the associated herbicide application on eubacterial and Pseudomonas communities in the rhizosphere. FEMS Microbiol Ecol. 2009; 41(3):181-90. DOI: 10.1111/j.1574-6941.2002.tb00979.x. View

5.
Griffiths R, Whiteley A, ODonnell A, Bailey M . Physiological and community responses of established grassland bacterial populations to water stress. Appl Environ Microbiol. 2003; 69(12):6961-8. PMC: 309888. DOI: 10.1128/AEM.69.12.6961-6968.2003. View