Denitrifying Woodchip Bioreactors: A Microbial Solution for Nitrate in Agricultural Wastewater—A Review

被引:0
作者
Sua Lee
Min Cho
Michael J. Sadowsky
Jeonghwan Jang
机构
[1] Jeonbuk National University,Division of Biotechnology and Advanced Institute of Environment and Bioscience
[2] University of Minnesota,BioTechnology Institute, Department of Soil, Water and Climate, and Department of Microbial and Plant Biology
来源
Journal of Microbiology | 2023年 / 61卷
关键词
Agricultural wastewater; Nitrate pollution; Woodchip bioreactor; Microbial N cycle; Enhancement of bioreactor performance;
D O I
暂无
中图分类号
学科分类号
摘要
Nitrate (NO3−) is highly water-soluble and considered to be the main nitrogen pollutants leached from agricultural soils. Its presence in aquatic ecosystems is reported to cause various environmental and public health problems. Bioreactors containing microbes capable of transforming NO3− have been proposed as a means to remediate contaminated waters. Woodchip bioreactors (WBRs) are continuous flow, reactor systems located below or above ground. Below ground systems are comprised of a trench filled with woodchips, or other support matrices. The nitrate present in agricultural drainage wastewater passing through the bioreactor is converted to harmless dinitrogen gas (N2) via the action of several bacteria species. The WBR has been suggested as one of the most cost-effective NO3−-removing strategy among several edge-of-field practices, and has been shown to successfully remove NO3− in several field studies. NO3− removal in the WBR primarily occurs via the activity of denitrifying microorganisms via enzymatic reactions sequentially reducing NO3− to N2. While previous woodchip bioreactor studies have focused extensively on its engineering and hydrological aspects, relatively fewer studies have dealt with the microorganisms playing key roles in the technology. This review discusses NO3− pollution cases originating from intensive farming practices and N-cycling microbial metabolisms which is one biological solution to remove NO3− from agricultural wastewater. Moreover, here we review the current knowledge on the physicochemical and operational factors affecting microbial metabolisms resulting in removal of NO3− in WBR, and perspectives to enhance WBR performance in the future.
引用
收藏
页码:791 / 805
页数:14
相关论文
共 568 条
  • [1] Aalto SL(2020)Nitrate removal microbiology in woodchip bioreactors: A case-study with full-scale bioreactors treating aquaculture effluents Science of the Total Environment 723 1651-1668
  • [2] Suurnäkki S(1996)Biological denitrification of high nitrate water: Influence of type of carbon source and nitrate loading Journal of Environmental Science and Health Part A 31 2050-2057
  • [3] von Ahnen M(2015)An electrogenic nitric oxide reductase FEBS Letters 589 197-207
  • [4] Siljanen HMP(2021)Fungal denitrification revisited—Recent advancements and future opportunities Soil Biology and Biochemistry 157 590-600
  • [5] Pedersen PB(2021)Isolation of cold-adapted nitrate-reducing fungi that have potential to increase nitrate removal in woodchip bioreactors Journal of Applied Microbiology. 131 1975-1989
  • [6] Tiirola M(2022)Bioaugmentation potential of a cold-adapted and nitrate-reducing fungus to enhance nitrate removal in woodchip bioreactors Bioresource Technology Reports 17 170-176
  • [7] Abu-Ghararah ZH(2020)Isolation and characterization of denitrifiers from woodchip bioreactors for bioaugmentation application Journal of Applied Microbiology 129 894-904
  • [8] Al-Attar S(2011)Soil environmental conditions rather than denitrifier abundance and diversity drive potential denitrification after changes in land uses Global Change Biology 17 132-141
  • [9] de Vries S(1987)Physiological properties of Applied Microbiology and Biotechnology 26 328-336
  • [10] Aldossari N(2017), a mesophilic cellulolytic bacterium Earth's Future 5 123-128