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The impact of DO and salinity on microbial community in poly(butylene succinate) denitrification reactors for recirculating aquaculture system wastewater treatment

机译:溶解氧和盐度对聚丁二酸丁二酯反硝化反应器中循环水产养殖系统废水处理中微生物群落的影响

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摘要

The interactions between environmental factors and bacterial community shift in solid-phase denitrification are crucial for optimum operation of a reactor and to achieve maximum treatment efficiency. In this study, Illumina high-throughput sequencing was applied to reveal the effects of different operational conditions on bacterial community distribution of three continuous operated poly(butylene succinate) biological denitrification reactors used for recirculating aquaculture system (RAS) wastewater treatment. The results indicated that salinity decreased OTU numbers and diversity while dissolved oxygen (DO) had no obvious influence on OTU numbers. Significant microbial community composition differences were observed among and between three denitrification reactors under varied operation conditions. This result was also demonstrated by cluster analysis (CA) and detrended correspondence analysis (DCA). Hierarchical clustering and redundancy analysis (RDA) was performed to test the relationship between environmental factors and bacterial community compositions and result indicated that salinity, DO and hydraulic retention time (HRT) were the three key factors in microbial community formation. Besides, Simplicispira was detected under all operational conditions, which worth drawing more attention for nitrate removal. Moreover, the abundance of nosZ gene and 16S rRNA were analyzed by real-time PCR, which suggested that salinity decreased the proportion of denitrifiers among whole bacterial community while DO had little influence on marine reactors. This study provides an overview of microbial community shift dynamics in solid-phase denitrification reactors when operation parameters changed and proved the feasibility to apply interval aeration for denitrification process based on microbial level, which may shed light on improving the performance of RAS treatment units.Electronic supplementary materialThe online version of this article (doi:10.1186/s13568-017-0412-3) contains supplementary material, which is available to authorized users.
机译:固相反硝化过程中环境因素与细菌群落迁移之间的相互作用对于反应器的最佳运行和实现最大处理效率至关重要。在这项研究中,Illumina高通量测序被用于揭示不同的操作条件对用于循环水产养殖系统(RAS)废水处理的三个连续操作的聚丁二酸丁二醇酯生物反硝化反应器细菌群落分布的影响。结果表明,盐度降低了OTU数量和多样性,而溶解氧(DO)对OTU数量没有明显影响。在不同的运行条件下,三个反硝化反应器之间以及之间的微生物群落组成均存在显着差异。聚类分析(CA)和去趋势对应分析(DCA)也证明了这一结果。进行了层次聚类和冗余度分析(RDA)以检验环境因素与细菌群落组成之间的关系,结果表明盐度,溶解氧和水力停留时间(HRT)是微生物群落形成的三个关键因素。此外,在所有操作条件下均检测到了辛普利螺旋藻,值得在去除硝酸盐方面引起更多关注。此外,通过实时PCR分析了nosZ基因和16S rRNA的丰度,这表明盐度降低了整个细菌群落中反硝化剂的比例,而DO对海洋反应堆的影响很小。这项研究概述了当操作参数发生变化时固相反硝化反应器中微生物群落迁移动力学的变化,并证明了基于微生物水平在反硝化过程中应用间歇曝气的可行性,这可能为提高RAS处理装置的性能提供了启示。补充材料本文的在线版本(doi:10.1186 / s13568-017-0412-3)包含补充材料,授权用户可以使用。

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