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Reductive Debromination of Polybrominated Diphenyl Ethers by Anaerobic Bacteria from Soils and Sediments

机译:土壤和沉积物中厌氧细菌对多溴联苯醚的还原脱溴作用

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Polybrominated diphenyl ethers (PBDEs) have attracted attention recently due to their proven adverse effects on animals and their increasing concentrations in various environmental media and biota. To gain insight into the fate of PBDEs, microcosms established with soils and sediments from 28 locations were investigated to determine their debromination potential with an octa-brominated diphenyl ether (octa-BDE) mixture consisting of hexa- to nona-BDEs. Debromination occurred in microcosms containing samples from 20 of the 28 locations when they were spiked with octa-BDE dissolved in the solvent trichloroethene (TCE), which is a potential cosubstrate for stimulating PBDE debromination, and in microcosms containing samples from 11 of the 28 locations when they were spiked with octa-BDE dissolved in nonane. Debromination products ranging from hexa- to mono-BDEs were generated within 2 months. Notably, the toxic tetra-BDEs accounted for 50% of the total product. In sediment-free culture C-N-7* amended with the octa-BDE mixture and nonane (containing 45 nM nona-BDE, 181 nM octa-BDEs, 294 nM hepta-BDE, and 19 nM hexa-BDE) there was extensive debromination of the parent compounds, which produced hexa-BDE (56 nM), penta-BDEs (124 nM), and tetra-BDEs (150 nM) within 42 days, possibly by a metabolic process. A 16S rRNA gene-based analysis revealed that Dehalococcoides species were present in 11 of 14 active microcosms. However, unknown debrominating species in some of the microcosms debrominated the octa-BDE mixture in the absence of other added halogenated electron acceptors (such as TCE). These findings provide information that is useful for assessing microbial reductive debromination of higher brominated PBDEs to less-brominated congeners, a possible source of the more toxic congeners (e.g., penta- and tetra-BDEs) detected in the environment.
机译:多溴二苯醚(PBDEs)由于其对动物的不良影响以及它们在各种环境介质和生物区系中的浓度不断升高,最近引起了人们的关注。为了深入了解多溴二苯醚的命运,研究了利用28个地点的土壤和沉积物建立的微观世界,以确定由六溴到九溴二苯醚组成的八溴联苯醚(八溴二苯醚)的脱溴潜力。在将28个位置中的20个样品的缩微样品掺入溶解在溶剂三氯乙烯(TCE)中的八溴二苯醚加标时,会发生脱溴作用,而八溴二苯醚可能是刺激PBDE除溴的潜在底物,在包含28个位置中的11个样品的缩微样品中会发生脱溴作用。当它们掺入溶解在壬烷中的八溴二苯醚时。在两个月内产生了六溴二苯醚到一溴二苯醚的脱溴产物。值得注意的是,有毒的四溴联苯醚占总产品的50%。在无沉淀培养物中,用八溴联苯醚混合物和壬烷(含有45 nM九溴联苯醚,181 nM八溴联苯醚,294 nM七溴联苯醚和19 nM六溴联苯醚改性)对CN-7 *进行了广泛的脱溴处理。这些母体化合物可能在42天内通过代谢过程产生了六溴二苯醚(56 nM),五溴二苯醚(124 nM)和四溴二苯醚(150 nM)。基于16S rRNA基因的分析显示,在14个活跃的微观世界中有11个存在Dehaloccocoides物种。然而,在没有添加其他卤代电子受体(例如TCE)的情况下,某些微观世界中未知的脱溴物质使八溴二苯醚混合物脱溴。这些发现为评估较高溴化多溴二苯醚对少溴化同系物的微生物还原脱溴提供了有用的信息,溴化同系物是在环境中检测到的毒性更高的同系物(例如五溴和四溴二苯醚)的可能来源。

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