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Microscale structure and function of anaerobic-aerobic granules containing glycogen accumulating organisms.含糖原积累菌的厌氧-好氧颗粒的微观结构和功能。
FEMS Microbiol Ecol. 2003 Aug 1;45(3):253-61. doi: 10.1016/S0168-6496(03)00159-4.
2
Characterization, modeling and application of aerobic granular sludge for wastewater treatment.好的,请提供需要翻译的文本。
Adv Biochem Eng Biotechnol. 2009;113:275-303. doi: 10.1007/10_2008_29.
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Involvement of the TCA cycle in the anaerobic metabolism of polyphosphate accumulating organisms (PAOs).三羧酸循环在聚磷菌(PAOs)厌氧代谢中的作用。
Water Res. 2009 Mar;43(5):1330-40. doi: 10.1016/j.watres.2008.12.008. Epub 2008 Dec 24.
4
Functionally relevant microorganisms to enhanced biological phosphorus removal performance at full-scale wastewater treatment plants in the United States.在美国全规模污水处理厂中,与强化生物除磷性能功能相关的微生物。
Water Environ Res. 2008 Aug;80(8):688-98. doi: 10.2175/106143008x276741.
5
Micro-scale observations of the structure of aerobic microbial granules used for the treatment of nutrient-rich industrial wastewater.用于处理富营养工业废水的好氧微生物颗粒结构的微观尺度观察。
ISME J. 2008 May;2(5):528-41. doi: 10.1038/ismej.2008.12. Epub 2008 Feb 7.
6
Microbial composition and structure of aerobic granular sewage biofilms.好氧颗粒污水生物膜的微生物组成与结构
Appl Environ Microbiol. 2007 Oct;73(19):6233-40. doi: 10.1128/AEM.01002-07. Epub 2007 Aug 17.
7
"Candidatus Accumulibacter" population structure in enhanced biological phosphorus removal sludges as revealed by polyphosphate kinase genes.聚磷酸盐激酶基因揭示的强化生物除磷污泥中“暂定聚磷菌属”的种群结构
Appl Environ Microbiol. 2007 Sep;73(18):5865-74. doi: 10.1128/AEM.01207-07. Epub 2007 Aug 3.
8
Polyphosphate kinase genes from full-scale activated sludge plants.来自全规模活性污泥处理厂的多聚磷酸激酶基因。
Appl Microbiol Biotechnol. 2007 Nov;77(1):167-73. doi: 10.1007/s00253-007-1122-6. Epub 2007 Aug 2.
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Aerobic granular sludge--state of the art.
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MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0.MEGA4:分子进化遗传学分析(MEGA)软件版本4.0。
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好氧废水除磷系统中颗粒形成机制的研究

Granule formation mechanisms within an aerobic wastewater system for phosphorus removal.

机构信息

Advanced Water Management Centre (AWMC), University of Queensland, St. Lucia, QLD 4072, Australia.

出版信息

Appl Environ Microbiol. 2010 Nov;76(22):7588-97. doi: 10.1128/AEM.00864-10. Epub 2010 Sep 17.

DOI:10.1128/AEM.00864-10
PMID:20851963
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2976173/
Abstract

Granular sludge is a novel alternative for the treatment of wastewater and offers numerous operational and economic advantages over conventional floccular-sludge systems. The majority of research on granular sludge has focused on optimization of engineering aspects relating to reactor operation with little emphasis on the fundamental microbiology. In this study, we hypothesize two novel mechanisms for granule formation as observed in three laboratory scale sequencing batch reactors operating for biological phosphorus removal and treating two different types of wastewater. During the initial stages of granulation, two distinct granule types (white and yellow) were distinguished within the mixed microbial population. White granules appeared as compact, smooth, dense aggregates dominated by 97.5% "Candidatus Accumulibacter phosphatis," and yellow granules appeared as loose, rough, irregular aggregates with a mixed microbial population of 12.3% "Candidatus Accumulibacter phosphatis" and 57.9% "Candidatus Competibacter phosphatis," among other bacteria. Microscopy showed white granules as homogeneous microbial aggregates and yellow granules as segregated, microcolony-like aggregates, with phylogenetic analysis suggesting that the granule types are likely not a result of strain-associated differences. The microbial community composition and arrangement suggest different formation mechanisms occur for each granule type. White granules are hypothesized to form by outgrowth from a single microcolony into a granule dominated by one bacterial type, while yellow granules are hypothesized to form via multiple microcolony aggregation into a microcolony-segregated granule with a mixed microbial population. Further understanding and application of these mechanisms and the associated microbial ecology may provide conceptual information benefiting start-up procedures for full-scale granular-sludge reactors.

摘要

颗粒污泥是一种新型的废水处理方法,与传统的絮状污泥系统相比,具有许多操作和经济优势。大多数关于颗粒污泥的研究都集中在与反应器操作相关的工程方面的优化上,而很少强调基础微生物学。在这项研究中,我们假设了在三个实验室规模的序批式反应器中观察到的颗粒形成的两种新机制,这些反应器用于生物除磷并处理两种不同类型的废水。在颗粒形成的初始阶段,在混合微生物群体中区分出两种不同类型的颗粒(白色和黄色)。白色颗粒呈现出紧凑、光滑、密集的聚集物,主要由 97.5%的“Candidatus Accumulibacter phosphatis”组成,而黄色颗粒呈现出松散、粗糙、不规则的聚集物,混合微生物群体中含有 12.3%的“Candidatus Accumulibacter phosphatis”和 57.9%的“Candidatus Competibacter phosphatis”等细菌。显微镜观察显示,白色颗粒是均匀的微生物聚集物,黄色颗粒是分离的、类似于微菌落的聚集物,系统发育分析表明,颗粒类型可能不是菌株相关差异的结果。微生物群落组成和排列表明,每种颗粒类型的形成机制都不同。白色颗粒被假设为由单个微菌落向外生长形成以一种细菌类型为主的颗粒,而黄色颗粒被假设为由多个微菌落聚集形成一个具有混合微生物群体的微菌落分离的颗粒。进一步了解和应用这些机制及其相关的微生物生态学可能为全规模颗粒污泥反应器的启动程序提供概念信息。