新型 NOB 在全规模养鸭废水处理系统中的积极脱氮作用

IF 7.2 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research X Pub Date : 2024-07-10 DOI:10.1016/j.wroa.2024.100237
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引用次数: 0

摘要

亚硝酸盐氧化细菌(NOB)是现代污水处理厂(WWTPs)中厌氧氨氧化(anammox)驱动的脱氮技术中不受欢迎的细菌。根据我们所了解的 NOB 的生理特性,已经开发出了多种抑制 NOB 的策略。但是,我们对 NOB 在现代污水处理厂中生存的多样性和机制的了解仍然有限。本文从处理养鸭废水的大型污水处理厂的元基因组数据集中回收了三个 NOB 物种(NOB01-03)。其中,NOB01 和 NOB02 被归类为新发现的菌系 VII,暂命名为 Candidatus (Ca.) Nitrospira NOB01 和 Ca.Nitrospira NOB02。对基因组和原位转录组的分析表明,这两种新型 NOB 具有很强的活性和代谢多功能性。Ca.在溶解氧(DO)差异很大(0.01-5.01 mg/L)的所有水槽中都能检测到硝化钙梭菌的转录活性,这说明硝化钙梭菌能在变化不定的环境中生存。硝化螺菌可以在溶解氧波动的条件下生存。硝化纤维藻的丰度要低得多。在富含厌氧菌的海绵载体上,亚硝酸钙螺旋体的丰度要低得多,这可能是由于厌氧菌和反硝化细菌的底物(NO2-)竞争加剧所致。特别值得注意的是,Ca.Nitrospira 编码和treanscribed了与氨和氮氧化物产生有关的氰酸酯水解酶(CynS)、胺氧化酶、脲酶(UreC)和含铜亚硝酸盐还原酶(NirK),促使 NOB 与共存的 AOB 和 anammox 细菌相互作用。Ca.硝螺菌株 NOB01 和 NOB02 在同一好氧池中表现出截然不同的生态位偏好,它们分别主导了活性污泥和生物膜中的 NOB 群落。除了用于固定二氧化碳的常见 rTCA 循环外,NOB02 还编码和转录了一种还原性甘氨酸途径(RGP),可能用于固定二氧化碳。此外,NOB02 还编码和转录了一种 3b 组氢化酶和呼吸性硝酸还原酶,这可能会使该菌株在波动的活性污泥生态位中具有生存优势。这一新属的发现极大地拓宽了我们对 NOB 生态生理学的了解。此外,本研究揭示的新型 NOB 令人印象深刻的新陈代谢多功能性也增进了我们对 NOB 生存策略的了解,并为在基于厌氧反应的污水处理厂中抑制 NOB 提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A positive contribution to nitrogen removal by a novel NOB in a full-scale duck wastewater treatment system

Nitrite-oxidizing bacteria (NOB) are undesirable in the anaerobic ammonium oxidation (anammox)-driven nitrogen removal technologies in the modern wastewater treatment plants (WWTPs). Diverse strategies have been developed to suppress NOB based on their physiological properties that we have understood. But our knowledge of the diversity and mechanisms employed by NOB for survival in the modern WWTPs remains limited. Here, Three NOB species (NOB01–03) were recovered from the metagenomic datasets of a full-scale WWTP treating duck breeding wastewater. Among them, NOB01 and NOB02 were classified as newly identified lineage VII, tentatively named Candidatus (Ca.) Nitrospira NOB01 and Ca. Nitrospira NOB02. Analyses of genomes and in situ transcriptomes revealed that these two novel NOB were active and showed a high metabolic versatility. The transcriptional activity of Ca. Nitrospira could be detected in all tanks with quite different dissolved oxygen (DO) (0.01–5.01 mg/L), illustrating Ca. Nitrospira can survive in fluctuating DO conditions. The much lower Ca. Nitrospira abundance on the anammox bacteria-enriched sponge carrier likely originated from the intensification substrate (NO2) competition from anammox and denitrifying bacteria. In particular, a highlight is that Ca. Nitrospira encoded and treanscribed cyanate hydratase (CynS), amine oxidase, urease (UreC), and copper-containing nitrite reductase (NirK) related to ammonium and NO production, driving NOB to interact with the co-existed AOB and anammox bacteria. Ca. Nitrospira strains NOB01 and NOB02 showed quite different niche preference in the same aerobic tank, which dominanted the NOB communities in activated sludge and biofilm, respectively. In addition to the common rTCA cycle for CO2 fixation, a reductive glycine pathway (RGP) was encoded and transcribed by NOB02 likely for CO2 fixation purpose. Additionally, a 3b group hydrogenase and respiratory nitrate reductase were uniquely encoded and transcribed by NOB02, which likely confer a survival advantage to this strain in the fluctuant activated sludge niche. The discovery of this new genus significantly broadens our understanding of the ecophysiology of NOB. Furthermore, the impressive metabolic versatility of the novel NOB revealed in this study advances our understanding of the survival strategy of NOB and provides valuable insight for suppressing NOB in the anammox-based WWTP.

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来源期刊
Water Research X
Water Research X Environmental Science-Water Science and Technology
CiteScore
12.30
自引率
1.30%
发文量
19
期刊介绍: Water Research X is a sister journal of Water Research, which follows a Gold Open Access model. It focuses on publishing concise, letter-style research papers, visionary perspectives and editorials, as well as mini-reviews on emerging topics. The Journal invites contributions from researchers worldwide on various aspects of the science and technology related to the human impact on the water cycle, water quality, and its global management.
期刊最新文献
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