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Development and Characterization of a Chloroethenes-Dechlorinating Consortium Using Gluconate as a Hydrogen Donor

机译:使用葡萄糖酸盐作为氢气体供体的氯乙烯 - 脱氯联盟的开发和表征

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摘要

To evaluate the effectiveness of gluconate as a potential hydrogen donor for reductive dechlorination of chloroethenes, we developed a trichloroethene (TCE)-dechlorinating consortium from chloroethenes-contaminated groundwater containing Dehalococcoides using gluconate as the sole hydrogen donor and characterized its chloroethenes-dechlorinating performance and microbial community composition. After repeated subculturing, we successfully developed a microbial consortium with gluconate, which showed consistent dechlorination of TCE to vinyl chloride (VC), resulting in subsequent disappearance of VC. The resultant consortium could dechlorinate 24 μmol/L TCE to VC and eliminate VC within 20 days, which was similar to or slightly longer than the required time when other hydrogen donors such as lactate or methanol were used. These results indicate that gluconate can be an effective hydrogen donor for reductive dechlorination of chloroethenes. Real-time PCR and terminal restriction fragment length polymorphism analyses of bacterial and archaeal populations revealed the establishment of a stable microbial community in the developed consortium. In addition, 16S rRNA amplicon sequencing revealed that Trichococcus and Malikia were the predominant taxa, whereas Dehalococcoides and other dechlorinating populations were minor. Our results infer that the use of gluconate as a hydrogen donor established a distinctive microbial community compared with enriched consortia developed with other hydrogen donors.
机译:为了评估葡萄糖酸盐作为潜在的氢气供体进行氯乙醇的潜在氢气供体的有效性,我们通过使用葡萄糖酸盐作为唯一的氢气供体,从氯乙烯污染的地下水中开发了一种氯乙烯污染的地下水的三氯乙烯(TCE)联盟,并表征其氯乙烯 - 脱氯化性能和微生物社区组成。经过重复推梳,我们成功地开发了一种葡萄糖酸盐的微生物联盟,其表明TCE的一致脱氯至氯乙烯(VC),导致VC的后续消失。得到的联盟可以将24μmol/ L TCE脱氯至VC,并在20天内消除VC,其类似于或使用其他氢供应器如乳酸或甲醇的所需时间。这些结果表明葡萄糖酸盐可以是用于还原氯的脱氯的有效氢供体。细菌和古群的实时PCR和末端限制性片段长度多态性分析显示出在发达联盟中建立稳定的微生物群落。此外,16S rRNA扩增子测序显示,Trichococcus和Malikia是主要的分类群,而脱卤素和其他脱氯化群体是未成年人。我们的研究结果推断,与富含富氢供体的富集的联盟相比,使用葡萄糖酸盐作为氢气供体建立了独特的微生物群落。

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