School of Civil and Environmental Engineering, Harbin Institute of Technology Shenzhen, Shenzhen 518055, China; College of Environmental Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
College of Environmental Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
Sci Total Environ. 2022 Feb 1;806(Pt 4):151418. doi: 10.1016/j.scitotenv.2021.151418. Epub 2021 Nov 4.
As a core component of the biomass, the important role of extracellular polymeric substances (EPS) on treatment performance has been recognized. However, the comprehensive understanding of its correlation with nitrogen removal remains limited in biofilm-based reactors. In this study, the relevance between EPS and advanced nitrogen removal in a novel step-feed three-stage integrated anoxic/oxic biofilter (SFTIAOB) was specifically investigated. The operation showed as high as 81% TN removal was achieved under optimal conditions. Among the whole reactor, 2nd anoxic (A2) zone was the largest contributor for nitrogen removal, followed by the 3rd anoxic (A3) and 2nd oxic (O2) zones. EPS composition analysis found that high content of polysaccharides in tightly bound-EPS (A2 and A3) and protein in loosely bound-EPS and tightly bound-EPS (O2). Fourier transform infrared spectroscopy, three-dimensional fluorescence spectrum further verified stratified EPS subfractions containing different secondary protein structures, while 3-turn helix and tryptophan-like protein was the main reason for nitrogen removal. High-throughput sequencing revealed the co-existence of nitrogen removal-associated genera accomplished nitrification/denitrification combined with aerobic denitrification and anammox. Moreover, the correlation of EPS and microbial composition with nitrogen removal was clarified by redundancy analysis (RDA). Finally, potential mechanism for nitrogen removal was illuminated. This research gives more insight into EPS characteristics in enhancing nitrogen removal during the operation and optimization of a step-feed multi-stage A/O biofilm process.
作为生物量的核心组成部分,胞外聚合物(EPS)在处理性能方面的重要作用已得到认可。然而,在基于生物膜的反应器中,其与氮去除的综合相关性仍有限。在这项研究中,特别研究了新型分步进料三段式缺氧/好氧生物滤池(SFTIAOB)中 EPS 与高级脱氮之间的相关性。在最佳条件下,该运行可实现高达 81%的总氮去除率。在整个反应器中,第二缺氧区(A2)是去除氮的最大贡献者,其次是第三缺氧区(A3)和第二好氧区(O2)。EPS 成分分析发现,紧密结合-EPS(A2 和 A3)中多糖含量高,而松散结合-EPS 和紧密结合-EPS(O2)中蛋白质含量高。傅里叶变换红外光谱、三维荧光光谱进一步验证了分层 EPS 亚组分中含有不同的二级蛋白质结构,而 3 -turn helix 和色氨酸样蛋白是脱氮的主要原因。高通量测序揭示了与氮去除相关的属的共存,完成了硝化/反硝化与好氧反硝化和厌氧氨氧化相结合。此外,冗余分析(RDA)还阐明了 EPS 和微生物组成与氮去除的相关性。最后,阐明了氮去除的潜在机制。这项研究深入了解了 EPS 特性,在分步进料多级 A/O 生物膜工艺的运行和优化过程中增强了氮去除。