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反硝化能力 Tetrasphaera 及其在强化生物除磷工艺中生成氧化亚氮的贡献。

Denitrifying capabilities of Tetrasphaera and their contribution towards nitrous oxide production in enhanced biological phosphorus removal processes.

机构信息

UCIBIO, REQUIMTE, Departamento de Química, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, Campus de Caparica, 2829-516 Caparica, Portugal.

ICRA, Institut Català de Recerca de L'Aigua, Parc Científic I Tecnològic de La Universitat de Girona, 17003 Girona, Spain.

出版信息

Water Res. 2018 Jun 15;137:262-272. doi: 10.1016/j.watres.2018.03.010. Epub 2018 Mar 7.

Abstract

Denitrifying enhanced biological phosphorus removal (EBPR) systems can be an efficient means of removing phosphate (P) and nitrate (NO) with low carbon source and oxygen requirements. Tetrasphaera is one of the most abundant polyphosphate accumulating organisms present in EBPR systems, but their capacity to achieve denitrifying EBPR has not previously been determined. An enriched Tetrasphaera culture, comprising over 80% of the bacterial biovolume was obtained in this work. Despite the denitrification capacity of Tetrasphaera, this culture achieved only low levels of anoxic P-uptake. Batch tests with different combinations of NO, nitrite (NO) and nitrous oxide (NO) revealed lower NO accumulation by Tetrasphaera as compared to Accumulibacter and Competibacter when multiple electron acceptors were added. Electron competition was observed during the addition of multiple nitrogen electron acceptors species, where P uptake appeared to be slightly favoured over glycogen production in these situations. This study increases our understanding of the role of Tetrasphaera-related organisms in denitrifying EBPR systems.

摘要

反硝化强化生物除磷(EBPR)系统可以在低碳源和低氧需求的情况下,有效地去除磷酸盐(P)和硝酸盐(NO)。聚磷菌是 EBPR 系统中最丰富的聚磷菌之一,但它们实现反硝化 EBPR 的能力以前尚未确定。在这项工作中,获得了一种富集的 Tetrasphaera 培养物,其细菌生物量超过 80%。尽管 Tetrasphaera 具有反硝化能力,但该培养物仅在缺氧条件下实现了低水平的 P 吸收。不同 NO、亚硝酸盐(NO)和一氧化二氮(NO)组合的批处理测试表明,与 Accumulibacter 和 Competibacter 相比,当添加多个电子受体时,Tetrasphaera 的 NO 积累较少。在添加多种氮电子受体物种时观察到电子竞争,在这些情况下,P 吸收似乎略优于糖原产生。本研究增加了我们对 Tetrasphaera 相关生物在反硝化 EBPR 系统中的作用的理解。

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