缓慢可生物降解有机物形态对污泥絮体特性和微生物菌落发育的影响

IF 3.7 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yunya Gao, Chundi Gao, Jiamin Zhou, Zhuoni Chen, Xinyan Hu, Yongzhen Peng
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引用次数: 0

摘要

缓生物降解有机质因其结构复杂、降解速度慢而在污水处理中发挥着重要作用。本研究比较了不同基质形式,即颗粒状(颗粒淀粉)和溶解状(溶解淀粉)缓慢可生物降解有机物在顺序间歇式反应器(SBR)不同运行模式下的污泥絮凝特性和微生物菌落生长情况。结果表明,在全好氧运行模式下,溶解淀粉促进污泥絮团造粒,保持良好的沉降性能,而颗粒状淀粉在全好氧运行模式下积累胞外淀粉,总多糖含量显著增加,造成非丝状膨大。高通量测序结果证实,当提供不同淀粉形式时,不同污泥特性对功能微生物群落的影响。颗粒淀粉体系中的优势属是Flavobacterium,促进EPS中多糖的产生;而溶解淀粉体系中的优势属是Kouleothrix,在较大粒径的污泥中起吸附桥接作用,保持良好的污泥沉降性能。PICRUSt2分析表明,颗粒淀粉体系中的微生物在氮、碳和氨基酸代谢方面表现出较高的活性。在这里,我们展示了在污水处理系统中使用颗粒有机物的理论基础,为缓慢可生物降解有机物的形态与污泥膨胀之间的关系提供了一个新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of slowly biodegradable organic matter morphology on sludge floc characteristics and microbial colony development
Slowly biodegradable organic matters play an important role in sewage treatment because of their complex structure and slow degradation. This study compared the sludge floc characteristics and microbial colony growth of different substrate forms, namely particulate (particulate starch) and dissolved (dissolved starch) slowly biodegradable organic matters, in different operational modes of a sequencing batch reactor (SBR). Results showed that dissolved starch promoted sludge floc granulation and maintained good sedimentation performance during the whole operational period, while particulate starch accumulated extracellular starch in full aerobic operation mode and the total polysaccharide content increased significantly, causing non-filamentous bulking. High-throughput sequencing results confirmed the effects of varying sludge characteristics when supplied with different starch forms, on the functional microbial community. The dominant genus in the particulate starch system was Flavobacterium, promoting the production of polysaccharides in EPS, while the dominant genus in the dissolved starch system was Kouleothrix, which plays an adsorption bridging role in sludge with larger particle sizes and maintains a good sludge sedimentation performance. PICRUSt2 analysis showed that microbes in the particulate starch system exhibited high activity in terms of nitrogen, carbon and amino acid metabolism. Here, we demonstrate a theoretical basis for the use of particulate organic matter in sewage treatment systems, providing a novel perspective on the relationship between the morphology of slowly biodegradable organic matters and sludge bulking.
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来源期刊
Biochemical Engineering Journal
Biochemical Engineering Journal 工程技术-工程:化工
CiteScore
7.10
自引率
5.10%
发文量
380
审稿时长
34 days
期刊介绍: The Biochemical Engineering Journal aims to promote progress in the crucial chemical engineering aspects of the development of biological processes associated with everything from raw materials preparation to product recovery relevant to industries as diverse as medical/healthcare, industrial biotechnology, and environmental biotechnology. The Journal welcomes full length original research papers, short communications, and review papers* in the following research fields: Biocatalysis (enzyme or microbial) and biotransformations, including immobilized biocatalyst preparation and kinetics Biosensors and Biodevices including biofabrication and novel fuel cell development Bioseparations including scale-up and protein refolding/renaturation Environmental Bioengineering including bioconversion, bioremediation, and microbial fuel cells Bioreactor Systems including characterization, optimization and scale-up Bioresources and Biorefinery Engineering including biomass conversion, biofuels, bioenergy, and optimization Industrial Biotechnology including specialty chemicals, platform chemicals and neutraceuticals Biomaterials and Tissue Engineering including bioartificial organs, cell encapsulation, and controlled release Cell Culture Engineering (plant, animal or insect cells) including viral vectors, monoclonal antibodies, recombinant proteins, vaccines, and secondary metabolites Cell Therapies and Stem Cells including pluripotent, mesenchymal and hematopoietic stem cells; immunotherapies; tissue-specific differentiation; and cryopreservation Metabolic Engineering, Systems and Synthetic Biology including OMICS, bioinformatics, in silico biology, and metabolic flux analysis Protein Engineering including enzyme engineering and directed evolution.
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