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Assessment of microbial communities associated with fermentative-methanogenic biodegradation of aromatic hydrocarbons in groundwater contaminated with a biodiesel blend (B20)

机译:评估与生物柴油混合物(B20)污染的地下水中芳香烃的发酵-甲烷生成生物降解有关的微生物群落

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摘要

A controlled field experiment was conducted to assess the potential for fermentative-methanogenic biostimulation (by ammonium-acetate injection) to enhance biodegradation of benzene, toluene, ethylbenzene and xylenes (BTEX) as well as polycyclic aromatic hydrocarbons (PAHs) in groundwater contaminated with biodiesel B20 (20:80 v/v soybean biodiesel and diesel). Changes in microbial community structure were assessed by pyrosequencing 16S rRNA analyses. BTEX and PAH removal began 0.7 year following the release, concomitantly with the increase in the relative abundance of Desulfitobacterium and Geobacter spp. (from 5 to 52.7 % and 15.8 to 37.3 % of total Bacteria 16S rRNA, respectively), which are known to anaerobically degrade hydrocarbons. The accumulation of anaerobic metabolites acetate and hydrogen that could hinder the thermodynamic feasibility of BTEX and PAH biotransformations under fermentative/methanogenic conditions was apparently alleviated by the growing predominance of Methanosarcina. This suggests the importance of microbial population shifts that enrich microorganisms capable of interacting syntrophically to enhance the feasibility of fermentative-methanogenic bioremediation of biodiesel blend releases
机译:进行了一项受控的野外实验,以评估发酵性甲烷生成生物刺激(通过乙酸铵注射)增强由生物柴油污染的地下水中苯,甲苯,乙苯和二甲苯(BTEX)以及多环芳烃(PAHs)的生物降解的潜力。 B20(20:80 v / v大豆生物柴油和柴油)。通过焦磷酸测序16S rRNA分析评估微生物群落结构的变化。释放后0.7年开始去除BTEX和PAH,同时伴随着脱硫杆菌和Geobacter spp的相对丰度增加。 (分别占总细菌16S rRNA的5至52.7%和15.8至37.3%),已知它们会厌氧降解碳氢化合物。厌氧甲烷菌的优势日益明显地减轻了厌氧代谢产物乙酸盐和氢的积累,这可能会阻碍BTEX和PAH在转化/产甲烷条件下生物转化的热力学可行性。这表明了微生物种群转移的重要性,因为微生物种群转移必须富集能够进行营养相互作用的微生物,以增强生物柴油共混物释放物的发酵-甲烷生成生物修复的可行性。

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