首页> 外文期刊>Journal of applied microbiology >Antibiotic-induced role interchange between rare and predominant bacteria retained the function of a bacterial community for denitrifying quinoline degradation
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Antibiotic-induced role interchange between rare and predominant bacteria retained the function of a bacterial community for denitrifying quinoline degradation

机译:罕见和主要细菌之间的抗生素诱导的作用交换保留了细菌群体的功能,用于反硝化喹啉降解

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Aim Quinoline is a recalcitrant pollutant in coking wastewater which has been broadly investigated with many isolates possessing aerobic quinoline-degrading ability. However, studies on anaerobic degradation and the corresponding bacteria are very scarce. This study attempted to investigate the role of diverse functional members and the redundancy of quinoline degradation in a lab-scale quinoline denitrifying bioreactor. Methods and Results Antibiotics were added to the batch culture under denitrifying conditions to disturb the microbial community of the quinoline-degrading bioreactor. According to the results, the nitrate removal rate remained stable, and the quinoline removal rate increased by 9 center dot 7% after treatment with streptomycin. However, PCoA analysis of 16S rRNA gene sequencing data of these samples indicated a significant shift in microbial community structures. Specifically, 12 operational taxonomic units (OTUs), including OTU1 (Pseudomonas) and OTU2 (Achromobacter), were significantly enriched. OTU1 replaced OTU8 (Thauera) as the most predominant denitrifying quinoline-degrading member. However, OTU8 and other predominant OTUs (ComamonasandPseudoxanthomonas), which were hypothesized to contribute essentially to quinoline degradation in the origin bioreactor, became almost undetectable. Conclusion Functional redundancy due to high biological diversity allowed the role reversal of predominant quinoline-degrading bacteria and other rare bacteria when disturbed by antibiotic stress. Although the abundance of OTU1 was much lower initially, it replaced the essential role of the predominant member OTU8 in the bioreactor community for quinoline degradation once the environmental condition changed. Significance and Impact of the Study This study indicated that the high biological diversity in a wastewater treatment bacterial community is crucial for maintaining the degrading function of organic pollutants, especially in a changing environment due to external disturbance or stress.
机译:AIM喹啉是焦化废水中的醋酸污染物,这些污染物被广泛地研究了具有有氧喹啉降解能力的许多分离物。然而,对厌氧降解的研究和相应的细菌非常稀缺。本研究试图调查多样性功能成员的作用以及喹啉降解在实验室喹啉反硝化生物反应器中的冗余。将方法和结果在反硝化条件下将抗生素添加到分批培养物中以干扰喹啉降解生物反应器的微生物群落。根据结果​​,硝酸盐去除率保持稳定,喹啉去除率在用链霉素处理后7%增加了9个中心点7%。然而,这些样品的16S rRNA基因测序数据的PCOA分析表明微生物群落结构的显着变化。具体而言,有12个操作分类单位(OTU),包括OTU1(假鼠)和OTU2(AChromobacter),被显着富集。 OTU1取代了OTU8(Thauera)作为最主要的反硝化喹啉降解成员。然而,Otu8和其他主要的Otus(Comamonasandpsedudodonanthomonas)被假设为基本上促进原产地生物反应器中的喹啉降解,变得几乎不可检测。结论函数冗余由于高生物多样性允许在受抗生素应激干扰时逆转主要喹啉降解细菌和其他罕见细菌的作用。尽管最初的OTU1的丰度低得多,但是,一旦环境条件发生变化,它就取代了喹啉反应器群落中的主要成员OTU8在生物反应器群落中的基本作用。该研究的意义和影响本研究表明,废水处理细菌群落中的高生物多样性对于维持有机污染物的降解功能至关重要,特别是由于外部干扰或压力而在不断变化的环境中。

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