首页> 外文期刊>Journal of Hazardous Materials >Detoxification of 1,1,2-trichloroethane to ethene in a bioreactor co-culture of Dehalogenimonas and Dehalococcoides mccartyi strains
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Detoxification of 1,1,2-trichloroethane to ethene in a bioreactor co-culture of Dehalogenimonas and Dehalococcoides mccartyi strains

机译:Dehalogenimonas和Dehalococcoidesides mccartyi菌株的生物反应器共培养物中1,1,2-三氯乙烷对乙烯的解毒

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1,1,2-Trichloroethane (1,1,2-TCA) is a non-flammable organic solvent and common environmental contaminant in groundwater. Organohalide-respiring bacteria are key microorganisms to remediate 1,1,2-TCA because they can gain metabolic energy during its dechlorination under anaerobic conditions. However, all current isolates produce hazardous end products such as vinyl chloride, monochloroethane or 1,2-dichloroethane that accumulate in the medium. Here, we constructed a syntrophic co-culture of Dehalogenimonas and Dehalococcoides mccartyi strains to achieve complete detoxification of 1,1,2-TCA to ethene. In this co-culture, Dehalogenimonas transformed 1,1,2-TCA via dihaloelimination to vinyl chloride, whereas Dehalococcoides reduced vinyl chloride via hydrogenolysis to ethene. Molasses, pyruvate, and lactate supported full dechlorination of 1,1,2-TCA in serum bottle co-cultures. Scale up of the cultivation to a 5-L bioreactor operating for 76 din fed-batch mode was successful with pyruvate as substrate. This synthetic combination of bacteria with known complementary metabolic capabilities demonstrates the potential environmental relevance of microbial cooperation to detoxify 1,1,2-TCA. (C)2017 Elsevier B.V. All rights reserved.
机译:1,1,2-三氯乙烷(1,1,2-TCA)是不易燃的有机溶剂,是地下水中的常见环境污染物。呼吸有机卤化物的细菌是补救1,1,2-TCA的关键微生物,因为它们可以在厌氧条件下的脱氯过程中获得代谢能。但是,所有当前的分离物都会产生危险的最终产物,例如氯乙烯,一氯乙烷或1,2-二氯乙烷,它们会积存在介质中。在这里,我们构建了Dehalogenimonas和Dehalococcoides mccartyi菌株的营养共培养,以实现将1,1,2-TCA完全解毒为乙烯。在这种共培养中,Dehalogenimonas通过二卤消除将1,1,2-TCA转化为氯乙烯,而Dehaloccocoides通过氢解将乙烯还原为氯乙烯。糖蜜,丙酮酸和乳酸支持血清瓶共培养物中1,1,2-TCA的完全脱氯。以丙酮酸为底物成功地将培养规模扩大到以76 din分批补料模式运行的5 L生物反应器。具有已知互补代谢功能的细菌的这种合成组合证明了微生物合作对1,1,2-TCA排毒的潜在环境相关性。 (C)2017 Elsevier B.V.保留所有权利。

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