4.8 Article

Nitrate effects on chromate reduction in a methane-based biofilm

期刊

WATER RESEARCH
卷 115, 期 -, 页码 130-137

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.watres.2017.03.003

关键词

Chromate reduction; Nitrate; Methane; Microorganism; Membrane biofilm reactor

资金

  1. Open Project of State Key Laboratory of Urban Water Resource and Environment (Harbin Institute of Technology) [QAK201605]
  2. National Natural Science Foundation of China [21377109, 21577123]
  3. Natural Science Funds for Distinguished Young Scholar of Zhejiang Province [LR17B070001]
  4. Shanghai Tongji Gao Tingyao Environmental Science & Technology Development Foundation

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The effects of nitrate (NO3-) on chromate (Cr(VI)) reduction in a membrane biofilm reactor (MBfR) were studied when CH4 was the sole electron donor supplied with a non-limiting delivery capacity. A high surface loading of NO3- gave significant and irreversible inhibition of Cr(VI) reduction. At a surface loading of 500 mg Cr/m(2)-d, the Cr(VI)-removal percentage was 100% when NO3- was absent (Stage 1), but was dramatically lowered to < 25% with introduction of 280 mg N m(-2)-d NO3- (Stage 2). After similar to 50 days operation in Stage 2, the Cr(VI) reduction recovered to only similar to 70% in Stage 3, when NO3- was removed from the influent; thus, NO3- had a significant long-term inhibition effect on Cr(VI) reduction. Weighted PCoA and UniFrac analyses proved that the introduction of NO3- had a strong impact on the microbial community in the biofilms, and the changes possibly were linked to the irreversible inhibition of Cr(VI) reduction. For example, Meiothermus, the main genus involved in Cr(VI) reduction at first, declined with introduction of NO3-. The denitrifier Chitinophagaceae was enriched after the addition of NO3-, while Pelomonas became important when nitrate was removed, suggesting its potential role as a Cr(VI) reducer. Moreover, introducing NO3- led to a decrease in the number of genes predicted (by PICRUSt) to be related to chromate reduction, but genes predicted to be related to denitrification, methane oxidation, and fermentation increased. (C) 2017 Elsevier Ltd. All rights reserved.

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