6533b859fe1ef96bd12b76e4

RESEARCH PRODUCT

Evidence of atrazine mineralization in a soil from the Nile Delta: Isolation of Arthrobacter sp. TES6, an atrazine-degrading strain

Marion Devers-lamraniFrédérique ChangeyNadine RouardFabrice Martin-laurentTalaat El-sebai

subject

[SDV]Life Sciences [q-bio]010501 environmental sciencesatz and trz genes01 natural sciencesMicrobiologybiodegradationMicrobiologySmaIBiomaterials03 medical and health scienceschemistry.chemical_compoundArthrobacter[SDV.BV]Life Sciences [q-bio]/Vegetal BiologyAtrazineWaste Management and DisposalComputingMilieux_MISCELLANEOUS0105 earth and related environmental sciences2. Zero hunger0303 health sciencesbiology030306 microbiologyMineralization (soil science)Biodegradationarthrobacter sp.16S ribosomal RNAbiology.organism_classificationDNA profilingchemistrybiotechnology and applied microbiologyenvironmental sciences and ecology[SDE]Environmental SciencesBacteriaatrazine

description

International audience; The s-triazine herbicide atrazine was rapidly mineralized (i.e., about 60% of C-14-ring-labelled atrazine released as (CO2)-C-14 within 21 days) by an agricultural soil from the Nile Delta (Egypt) that had been cropped with corn and periodically treated with this herbicide. Seven strains able to degrade atrazine were isolated by enrichment cultures of this soil. DNA fingerprint and phylogenetic studies based on 165 rRNA analysis showed that the seven strains were identical and belonged to the phylogeny of the genus Arthrobacter (99% similarity with Arthrobacter sp. AD38, EU710554). One strain, designated Arthrobacter sp. strain TES6, degraded atrazine and mineralized the C-14-chain-labelled atrazine. However, it was unable to mineralize the C-14-ring-labelled atrazine. Atrazine biodegradation ended in a metabolite that co-eluted with cyanuric acid in HPLC. This was consistent with its atrazine-degrading genetic potential, shown to be dependent on the trzN, atzB, and atzC gene combination. Southern blot analysis revealed that the three genes were located on a large plasmid of about 175 kb and clustered on a 22-kb Smal fragment. These results reveal for the first time the adaptation of a North African agricultural soil to atrazine mineralization and raise interesting questions about the pandemic dispersion of the trzN, atzBC genes among atrazine-degrading bacteria worldwide. (C) 2011 Elsevier Ltd. All rights reserved.

10.1016/j.ibiod.2011.05.011https://hal.univ-lorraine.fr/hal-03219260