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Effect of inoculum pretreatment on survival, activity and catabolic gene expression of Sphingobium yanoikuyae B1 in an aged polycyclic aromatic hydrocarbon-contaminated soil

机译:接种物对老龄多环芳烃污染土壤中矢车菊B1存活,活性和分解代谢基因表达的影响

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The survival and effectiveness of a bioaugmentation strain in its target environment depend not only on physicochemical parameters in the soil but also on the physiological state of the inoculated organism. This study examined the effect of variations in inoculum pretreatment on the survival, metabolic activity (measured as rRNA content) and polycyclic aromatic hydrocarbon (PAH)-catabolic gene expression of Sphingobium yanoikuyae B1 in an aged PAH-contaminated soil. RNA denaturing gradient gel electrophoresis analysis showed stable colonization of PAH-contaminated soil by S. yanoikuyae B1 after four pretreatments (growth in complex or minimal medium, starvation, or acclimation to phenanthrene). By contrast, extractable CFUs decreased with time for all four treatments, and significantly faster for Luria Bertani-grown inocula, suggesting that these cells adhered strongly to soil particles while remaining metabolically active. Pretreatment of the inoculum had a dramatic effect on the expression of genes specific to the PAH-degradation pathway. The highest levels of bphC and xylE expression were seen for inocula that had been precultivated on complex medium, and degradation of PAHs was significantly enhanced in soils treated with these inocula. The results suggest that using complex media instead of minimal media for cultivating bioaugmentation inocula may improve the subsequent efficiency of contaminant biodegradation in the soil.
机译:生物强化菌株在其目标环境中的存活和有效性不仅取决于土壤中的物理化学参数,还取决于被接种生物的生理状态。这项研究检查了接种物变化对老年受PAH污染的土壤中的Sphingobium yanoikuyae B1的存活,代谢活性(以rRNA含量衡量)和多环芳烃(PAH)分解代谢基因表达的影响。 RNA变性梯度凝胶电泳分析显示,经过四个预处理(在复杂或基本培养基中生长,饥饿或菲适应),S。yanoikuyae B1稳定地定居了PAH污染的土壤。相比之下,在所有四种处理中,可提取的CFU均随时间下降,而对于卢里亚·伯塔尼(Luria Bertani)生长的接种物,则明显快得多,这表明这些细胞牢固地粘附于土壤颗粒,同时保持代谢活性。接种物的预处理对PAH降解途径特异的基因表达具有显着影响。对于在复杂培养基上预培养的接种物,bphC和xylE的表达水平最高,在用这些接种物处理的土壤中,PAHs的降解显着增强。结果表明,使用复杂的培养基而不是最少的培养基来培养生物增强接种物可以提高土壤中污染物生物降解的后续效率。

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