首页> 外文期刊>The Science of the Total Environment >Substrate type determines microbial activity and community composition in bioreactors for nitrate removal by denitrification at low temperature
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Substrate type determines microbial activity and community composition in bioreactors for nitrate removal by denitrification at low temperature

机译:底物型确定生物反应器中的微生物活性和群落组合物,用于在低温下通过反硝化去除硝酸盐

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摘要

High levels of nitrogen originating from blasting operations, for example at mining sites or quarries, risk contaminating water bodies through leaching from waste rock dumps. Woodchip bioreactors can be a simple and cost-effective way of reducing nitrate concentrations in the leachate. In this study we investigated how bottle sedge, barley straw, and pine woodchips used as electron donors for denitrification influenced microbial community composition and nitrate removal in lab-scale bioreactors during 270 days. The reactors were operated to ensure that nitrate was never limiting and to achieve similar nitrate removal (%). Distinct bacterial communities developed due to the different substrates, as determined by sequencing of the 16S rRNA gene. Sedge and straw reactors shared more taxa with each other than with woodchips and throughout the experimental period, sedge and straw were more diverse than woodchips. Cellulose degrading bacteria like Fibrobacteres and Verrucomicrobia were detected in the substrates after 100-150 days of operation. Nitrate removal rates were highest in the sedge and straw reactors. After initial fluctuations, these reactors removed 5.1-6.3 g N m~(-3) water day~(-1), which was 3.3-4.4 times more than in the woodchip reactors. This corresponded to 48%, 42%, and 44% nitrate removal for the sedge, straw, and woodchip reactors respectively. The functional communities were characterized by quantitative PCR and denitrification was the major nitrate removing process based on genetic potential and water chemistry, although sedge and straw developed a capacity for ammonification. Gene ratios suggested that denitrification was initially incomplete and terminating with nitrous oxide. An increase in abundances of nitrous oxide reducing capacity in all substrate types towards the end increased the potential for less emissions of the greenhouse gas nitrous oxide.
机译:源自爆破作业的高水平氮,例如在采矿部位或采石场,通过从废岩倾卸液中浸出污染水体的风险。木片生物反应器可以是一种简单且经济高效地减少硝酸盐浓度的渗出液。在这项研究中,我们调查了如何用作电子供体的瓶薹,大麦秸秆和松木芯片用于反硝化的电子供体影响微生物群落组成和在270天内在实验室中生物反应器中的硝酸盐去除。操作反应器以确保硝酸盐永远不会限制,并且达到相似的硝酸盐去除(%)。通过不同的底物而产生的不同的细菌社区,如通过16S rRNA基因的测序确定的。莎草和秸秆堆互联网彼此共享多个分类群,而不是在整个实验期间,莎草和稻草比Woodchips更多样化。在100-150天的操作之后,在底物中检测纤维素降解细菌和疣状病症。脂肪酸和秸秆反应器中硝酸盐去除率最高。在初始波动后,除去5.1-6.3g n m〜(-3)水日〜(-1),比木片反应器中的3.3-4.4倍。这相当于分别对葡萄筛,稻草和木片反应器的48%,42%和44%的硝酸盐除去。通过定量PCR的特征表征了功能性群落,否则基于遗传潜力和水化学的主要硝酸盐去除过程,尽管莎草和秸秆发育了氨化能力。基因率表明,脱氮最初不完全并终止于氧化亚氮。迄今为止所有底物类型的氧化氮降低容量的丰度的增加增加了温室气体氧化物较少排放的可能性。

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  • 来源
    《The Science of the Total Environment》 |2021年第1期|143023.1-143023.10|共10页
  • 作者单位

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden;

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden;

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden;

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden 'Swedish Agency for Marine and Water Management' Box 11930 40439 Gothenburg Sweden;

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden;

    Swedish University of Agricultural Sciences Department of Forest Mycology and Plant Pathology Box 7026 75007 Uppsala Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Denitrifying woodchip reactor; DNRA; Nitrous oxide; Wastewater treatment;

    机译:反硝化木片反应器;DNRA;笑气;废水处理;

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