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Degradation of Polycyclic Aromatic Hydrocarbons at Low Temperature under Aerobic and Nitrate-Reducing Conditions in Enrichment Cultures from Northern Soils

机译:北方土壤富营养培养中需氧和减少硝酸盐条件下低温降解多环芳烃的研究

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摘要

The potential for biodegradation of polycyclic aromatic hydrocarbons (PAHs) at low temperature and under anaerobic conditions is not well understood, but such biodegradation would be very useful for remediation of polluted sites. Biodegradation of a mixture of 11 different PAHs with two to five aromatic rings, each at a concentration of 10 μg/ml, was studied in enrichment cultures inoculated with samples of four northern soils. Under aerobic conditions, low temperature severely limited PAH biodegradation. After 90 days, aerobic cultures at 20°C removed 52 to 88% of the PAHs. The most extensive PAH degradation under aerobic conditions at 7°C, 53% removal, occurred in a culture from creosote-contaminated soil. Low temperature did not substantially limit PAH biodegradation under nitrate-reducing conditions. Under nitrate-reducing conditions, naphthalene, 2-methylnaphthalene, fluorene, and phenanthrene were degraded. The most extensive PAH degradation under nitrate-reducing conditions at 7°C, 39% removal, occurred in a culture from fuel-contaminated Arctic soil. In separate transfer cultures from the above Arctic soil, incubated anaerobically at 7°C, removal of 2-methylnaphthalene and fluorene was stoichiometrically coupled to nitrate removal. Ribosomal intergenic spacer analysis suggested that enrichment resulted in a few predominant bacterial populations, including members of the genera Acidovorax, Bordetella, Pseudomonas, Sphingomonas, and Variovorax. Predominant populations from different soils often included phylotypes with nearly identical partial 16S rRNA gene sequences (i.e., same genus) but never included phylotypes with identical ribosomal intergenic spacers (i.e., different species or subspecies). The composition of the enriched communities appeared to be more affected by presence of oxygen, than by temperature or source of the inoculum.
机译:低温和厌氧条件下多环芳烃(PAHs)生物降解的潜力尚未得到很好的了解,但是这种生物降解对于修复污染位点将非常有用。在接种了四种北方土壤样品的富集培养物中,研究了11种不同PAHs与2至5个芳香环的混合物的生物降解,每个芳香环的浓度为10μg/ ml。在有氧条件下,低温严重限制了PAH的生物降解。 90天后,在20°C下的有氧培养去除了52%到88%的PAH。在受杂酚油污染的土壤中进行培养时,在7°C的有氧条件下,PAH降解最广泛,去除率为53%。低温在降低硝酸盐的条件下基本上没有限制PAH的生物降解。在硝酸盐还原条件下,萘,2-甲基萘,芴和菲被降解。在受燃料污染的北极土壤中进行的培养物中,在7°C的硝酸盐还原条件下,PAH降解最广泛,去除率达39%。在来自上述北极土壤的分开的转移培养物中,在7°C下厌氧孵育,将2-甲基萘和芴的化学计量耦合与硝酸盐的去除。核糖体基因间隔分析表明富集导致了一些主要细菌种群,包括嗜酸菌属,博代氏菌属,假单胞菌属,鞘氨醇单胞菌和Variovorax属。来自不同土壤的主要种群通常包括具有几乎相同的部分16S rRNA基因序列(即相同属)的系统型,但从未包括具有相同的核糖体基因间隔子(即不同的物种或亚种)的系统型。富氧群落的组成似乎受氧气的影响更大,而不是受温度或接种源的影响。

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