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Biotic and abiotic processes contribute to successful anaerobic degradation of cyanide by UASB reactor biomass treating brewery waste water

机译:生物和非生物过程有助于UASB反应器生物质处理啤酒废水成功地厌氧降解氰化物

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摘要

In contrast to the general aerobic detoxification of industrial effluents containing cyanide, anaerobic cyanide degradation is not well understood, including the microbial communities involved. To address this knowledge gap, this study measured anaerobic cyanide degradation and the rearrangements in bacterial and archaeal microbial communities in an upflow anaerobic sludge blanket (UASB) reactor biomass treating brewery waste water using bio-methane potential assays, molecular profiling, sequencing and microarray approaches. Successful biogas formation and cyanide removal without inhibition were observed at cyanide concentrations up to 5 mgl~(-2) At 8.5 mgl~(-1) cyanide, there was a 22 day lag phase in microbial activity, but subsequent methane production rates were equivalent to when 5 mg 1~(-2) was used. The higher cumulative methane production in cyanide-amended samples indicated that part of the biogas was derived from cyanide degradation. Anaerobic degradation of cyanide using autoclaved UASB biomass proceeded at a rate more than two times lower than when UASB biomass was not autoclaved, indicating that anaerobic cyanide degradation was in fact a combination of simultaneous abiotic and biotic processes. Phylogenetic analyses of bacterial and archaeal 16S rRNA genes for the first time identified and linked the bacterial phylum Firmicutes and the archaeal genus Meth-anosarcina sp. as important microbial groups involved in cyanide degradation. Methano-genic activity of unadapted granulated biomass was detected at higher cyanide concentrations than reported previously for the unadapted suspended biomass, making the aggregated structure and predominantly hydrogenotrophic nature of methanogenic community important features in cyanide degradation. The combination of brewery waste water and cyanide substrate was thus shown to be of high interest for industrial level anaerobic cyanide degradation.
机译:与含氰化物的工业废水的一般好氧排毒相反,厌氧性氰化物的降解,包括所涉及的微生物群落,尚不十分清楚。为了解决这一知识差距,本研究使用生物甲烷潜力测定,分子谱分析,测序和微阵列方法测量了上流厌氧污泥层(UASB)反应器生物质处理啤酒废水中的厌氧氰化物降解以及细菌和古细菌微生物群落的重排。 。在氰化物浓度高达5 mgl〜(-2)的情况下,观察到成功的沼气形成和无抑制的氰化物去除,在8.5 mgl〜(-1)的氰化物下,微生物活性存在22天的滞后阶段,但随后的甲烷生成速率相当至使用5 mg 1〜(-2)时。氰化物修正样品中较高的累积甲烷产量表明部分沼气源自氰化物降解。使用高压灭菌的UASB生物质进行氰化物的厌氧降解的速度要比不进行高压灭菌的UASB生物质低两倍以上,这表明厌氧氰化物的降解实际上是非生物和生物过程同时进行的结合。细菌和古细菌16S rRNA基因的系统发育分析首次发现并链接了菌门Fimicutes和古细菌Meth-anosarcina sp。作为参与氰化物降解的重要微生物基团。在氰化物浓度比以前报道的不适应悬浮生物量更高的氰化物浓度下,检测到不适应颗粒状生物质的产甲烷活性,这使得产甲烷群落的聚集结构和主要的氢营养性质成为氰化物降解的重要特征。因此,显示出啤酒废水和氰化物底物的结合对于工业水平厌氧氰化物的降解具有很高的意义。

著录项

  • 来源
    《Water Research》 |2013年第11期|3644-3653|共10页
  • 作者单位

    E-Net Okolje, d.o.o., Linhartoua 13, SI-1000 Ljubljana, Slouenia;

    Uniuersitaet Innsbruck, Institut fuer Miferobiologie, Technikeerstrasse 25 d, 6020 Innsbruck, Austria;

    University of Ljubljana, Faculty of Chemistry and Chemical Technology, Chair of Inorganic Chemistry, Asfeerceva 5,SI-1000 Ljubljana, Slouenia;

    University of Ljubljana, Faculty of Chemistry and Chemical Technology, Chair of Inorganic Chemistry, Asfeerceva 5,SI-1000 Ljubljana, Slouenia;

    Uniuersitaet Innsbruck, Institut fuer Miferobiologie, Technikeerstrasse 25 d, 6020 Innsbruck, Austria;

    University of Ljubljana, Biotechnical Faculty, Department of Animal Science, Chair for Microbiology and Microbial Biotechnology, Groblje 3, SI-1230 Domzale, Slouenia;

    Uniuersitaet Innsbruck, Institut fuer Miferobiologie, Technikeerstrasse 25 d, 6020 Innsbruck, Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cyanide; Anaerobic degradation; UASB; Firmicutes; Methanosarcina;

    机译:氰化物;厌氧降解;UASB;Firmicutes;甲烷菌;
  • 入库时间 2022-08-17 13:45:41

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