College of Animal Science and Technology, Northwest A&F University, Yangling 712100, China.
College of Animal Science and Technology, Northwest A&F University, Yangling 712100, China.
Sci Total Environ. 2022 May 15;821:153534. doi: 10.1016/j.scitotenv.2022.153534. Epub 2022 Jan 29.
Recently, more and more cold flowing water aquaculture has been adopted, but its wastewater treatment is always ignored, which causes great pressure on the environment. In this study, a compound in-situ treatment system that applied hydroponic plants and biofilm was constructed to treat the wastewater produced by cold flowing water culture of sturgeon. The removal efficiency of the nutrients from culture and the microbial composition in water and biofilm were tested, the correlation between the water quality indexes and bacterium was analyzed, and the abundance of nitrogen and phosphorus cycling genes was quantified. The results show that the system respectively achieved 90%, 100%, 100%, 100% and 48% removal efficiency of NH-N, NO-N, TN, TP and COD which were produced by experimental sturgeon culture. Chinese cabbage (Brassica rapa var. chinensis) and water dropwort (Oenanthe javanica) showed obvious growth in the four plants, which contributed to the removal of nutrients from wastewater. Besides, in the biofilm, Proteobacteria, Bacteroidetes and Verrucomicrobia became the top three dominant flora at the phylum level, and Flavobacterium, Rhodoferax, Sphaerotilus and Chitinimonas became the top four dominant flora at the genus level, which promoted the removal of nitrogen in the wastewater. The FAPROTAX analysis result shows that the highest functions within the carbon and nitrogen metabolisms were significantly identified in the biofilm, such as chemoheterotrophy, aerobic chemoheterotrophy and nitrate reduction. Further, the abundance of denitrifying genes (narG and napA) was higher than the nitrifying related genes (nxrB and amoA), indicating the more active denitrifying process. In summary, the compound in-situ treatment system efficiently removed nutrients from cold flowing water aquaculture. And the combined purification of hydroponic plants and biofilm which is rich in denitrifying bacterium plays an essential role in this process.
最近,越来越多的冷水流水养殖被采用,但废水处理往往被忽视,这给环境带来了巨大的压力。在本研究中,构建了一种应用水培植物和生物膜的复合原位处理系统,用于处理鲟鱼冷水流水养殖产生的废水。测试了养殖废水中营养物质的去除效率以及水和生物膜中微生物的组成,分析了水质指标与细菌的相关性,并定量了氮磷循环基因的丰度。结果表明,该系统分别实现了实验鲟鱼养殖产生的 NH-N、NO-N、TN、TP 和 COD 的 90%、100%、100%、100%和 48%去除效率。白菜( Brassica rapa var. chinensis )和水芹( Oenanthe javanica )在四种植物中均表现出明显的生长,有助于从废水中去除营养物质。此外,在生物膜中,变形菌门、拟杆菌门和疣微菌门成为门水平上的前三大优势菌群,黄杆菌属、红杆菌属、浮霉状菌属和几丁质单胞菌属成为属水平上的前四大优势菌群,促进了废水中氮的去除。FAPROTAX 分析结果表明,生物膜中碳氮代谢的最高功能显著,如化能异养、好氧化能异养和硝酸盐还原。此外,反硝化基因(narG 和 napA)的丰度高于硝化相关基因(nxrB 和 amoA),表明反硝化过程更为活跃。综上所述,复合原位处理系统有效地去除了冷水流水养殖中的营养物质。而富含反硝化菌的水培植物和生物膜的联合净化在这一过程中起着至关重要的作用。