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Salix purpurea Stimulates the Expression of Specific Bacterial Xenobiotic Degradation Genes in a Soil Contaminated with Hydrocarbons

机译:紫柳刺激受碳氢化合物污染的土壤中特定细菌异种降解基因的表达。

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摘要

The objectives of this study were to uncover Salix purpurea-microbe xenobiotic degradation systems that could be harnessed in rhizoremediation, and to identify microorganisms that are likely involved in these partnerships. To do so, we tested S. purpurea‘s ability to stimulate the expression of 10 marker microbial oxygenase genes in a soil contaminated with hydrocarbons. In what appeared to be a detoxification rhizosphere effect, transcripts encoding for alkane 1-monooxygenases, cytochrome P450 monooxygenases, laccase/polyphenol oxidases, and biphenyl 2,3-dioxygenase small subunits were significantly more abundant in the vicinity of the plant's roots than in bulk soil. This gene expression induction is consistent with willows' known rhizoremediation capabilities, and suggests the existence of S. purpurea-microbe systems that target many organic contaminants of interest (i.e. C4-C16 alkanes, fluoranthene, anthracene, benzo(a)pyrene, biphenyl, polychlorinated biphenyls). An enhanced expression of the 4 genes was also observed within the bacterial orders Actinomycetales, Rhodospirillales, Burkholderiales, Alteromonadales, Solirubrobacterales, Caulobacterales, and Rhizobiales, which suggest that members of these taxa are active participants in the exposed partnerships. Although the expression of the other 6 marker genes did not appear to be stimulated by the plant at the community level, signs of additional systems that rest on their expression by members of the orders Solirubrobacterales, Sphingomonadales, Actinomycetales, and Sphingobacteriales were observed. Our study presents the first transcriptomics-based identification of microbes whose xenobiotic degradation activity in soil appears stimulated by a plant. It paints a portrait that contrasts with the current views on these consortia's composition, and opens the door for the development of laboratory test models geared towards the identification of root exudate characteristics that limit the efficiency of current willow-based rhizoremediation applications.
机译:这项研究的目的是发现可以在根际修复中利用的柳柳微生物异源生物降解系统,并确定可能与这些伙伴关系有关的微生物。为此,我们测试了紫氏链球菌在被碳氢化合物污染的土壤中刺激10种标记微生物氧合酶基因表达的能力。在看来是排毒的根际效应中,植物根部附近编码烷烃1-单加氧酶,细胞色素P450单加氧酶,漆酶/多酚氧化酶和联苯2,3-双加氧酶小亚基的转录本明显多于散装。泥。这种基因表达的诱导与柳树已知的根际修复能力一致,并表明存在针对许多感兴趣的有机污染物(例如C4-C16烷烃,荧蒽,蒽,苯并(a)py,联苯,多氯联苯)。在细菌放线菌属,Rhodospirillales,Burkholderiales,Alteromonadales,Solirubrobacteraleales,Caulobacterales和Rhizobiales细菌阶中还观察到了这4个基因的增强表达,这表明这些类群的成员是暴露的伙伴关系的活跃参与者。尽管其他6个标记基因的表达在社区水平上似乎未受到植物的刺激,但仍观察到有其他系统的迹象,这些系统依托于沙门氏杆菌,鞘氨醇,放线菌和鞘氨醇杆菌的成员。我们的研究提出了第一个基于转录组学的微生物鉴定方法,这些微生物的土壤中异种生物降解活性似乎受到植物的刺激。它描绘了一幅与这些财团组成的当前观点形成鲜明对比的肖像,并为旨在确定根系分泌物特征的实验室测试模型的开发打开了大门,这些特征限制了目前基于柳树的根际修复应用的效率。

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