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Keystone Species and Niche Differentiation Promote Microbial N, P, and COD Removal in Pilot Scale Constructed Wetlands Treating Domestic Sewage

机译:基石物种和利基分化促进了Microbial N,P和COD去除在飞行员规模构建的湿地处理生活污水

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摘要

The microbial characteristics related to nitrogen (N), phosphorus (P), and chemical oxygen demand (COD) removal were investigated in three pilot scale constructed wetlands (CWs). Compared to horizontal subsurface flow (HSSF) and surface flow (SF) CWs, the aerobic vertical flow (VF) CW enriched more functional bacteria carrying genes for nitrification (nxrA, amoA), denitrification (nosZ), dephosphorization (phoD), and methane oxidation (mmoX), while the removal of COD, total P, and total N increased by 33.28%, 25S.28%, and 299.06%, respectively. The cooccurrence network of functional bacteria in the HSSF CW was complex, with equivalent bacterial cooperation and competition. Both the VF and SF CWs exhibited a simple functional topological structure. The VF CW reduced functional redundancy by forming niche differentiation, which filtered out keystone species that were closely related to each other, thus achieving effective sewage purification. Alternatively, bacterial niche overlap protected a single function in the SF CW. Compared with the construction type, temperature, and plants had less effect on nutrient removal in the CWs from this subtropical region. Partial least-squares path modeling (PLS-PM) suggests that high dissolved oxygen and oxidation-reduction potential promoted a diverse bacterial community and that the nonkeystone bacteria reduced external stress for functional bacteria, thereby indirectly promoting nutrient removal.
机译:与氮(N)的微生物学特性,磷(P),和化学需氧量(COD)去除在三个试规模人工湿地(CWS)进行了调查。相比水平潜流(HSSF)和表面流(SF)的CW,好氧垂直流(VF)CW富集携带基因硝化(nxrA,AMOA),反硝化(nosZ),脱磷(phoD),和甲烷更多功能菌氧化(mmoX),而除去COD,总P,和全N分别提高了33.28%,25S.28%,和299.06%。在HSSF CW功能菌一同出现网络是复杂的,具有同等细菌的合作与竞争。无论是音频和SF的CW表现出简单的功能拓扑结构。的VF CW通过形成位分化,其筛选出来,密切相关彼此,从而实现有效的污水净化关键种降低功能冗余。备选地,细菌生态位重叠保护在SF CW单个功能。与建筑型相比,温度,和植物对在CW的营养物去除来自该亚热带地区的影响较小。偏最小二乘路径建模(PLS-PM)表明,高溶解氧和氧化还原电位促进了多样的细菌群落,而且nonkeystone细菌减少外部应力对功能的细菌,从而间接地促进营养物去除。

著录项

  • 来源
    《Environmental Science & Technology》 |2021年第18期|12652-12663|共12页
  • 作者单位

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

    Research Center of Hydrobiology Department of Ecology Jinan University Guangzhou 510632 China Engineering Research Center of Tropical and Subtropical Aquatic Ecological Engineering Ministry of Education Guangzhou 510632 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    pilot scale constructed wetlands; nitrogen and phosphorus removal; chemical oxygen demand metabolism; keystone species; bacterial niche;

    机译:飞行员规模建造湿地;氮和磷去除;化学氧需求新陈代谢;基石物种;细菌利基;

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