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抑制耗氢微生物的策略会影响颗粒污泥的宏观和微观结构及微生物学特性。

Strategies to suppress hydrogen-consuming microorganisms affect macro and micro scale structure and microbiology of granular sludge.

机构信息

IBB-Institute for Biotechnology and Bioengineering, Centre of Biological Engineering, University of Minho, 4710-057 Braga, Portugal.

出版信息

Biotechnol Bioeng. 2011 Aug;108(8):1766-75. doi: 10.1002/bit.23145. Epub 2011 Apr 14.

DOI:10.1002/bit.23145
PMID:21445883
Abstract

Treatment of anaerobic granules with heat and two chemical treatments, contacting with 2-bromoethanesulfonate (BES) and with BES + Chloroform, were applied to suppress hydrogen-consuming microorganisms. Three mesophilic expanded granular sludge bed (EGSB) reactors-R(Heat), R(BES), and R(BES + Chlo)--were inoculated with the treated sludges and fed with synthetic sugar-based wastewater (5 g(COD) L(-1), HRT 20-12 h). Morphological integrity of granules and bacterial communities were assessed by quantitative image analysis and 16S rRNA gene based techniques, respectively. Hydrogen production in R(Heat) was under 300 mL H(2) L(-1) day(-1), with a transient peak of 1,000 mL H(2) L(-1) day(-1) after decreasing HRT. In R(BES + Chlo) hydrogen production rate did not exceed 300 mL H(2) L(-1) day(-1) and there was granule fragmentation, release of free filaments from aggregates, and decrease of granule density. In R(BES), there was an initial period with unstable hydrogen production, but a pulse of BES triggered its production rate to 700 ± 200 mL H(2) L(-1) day(-1). This strategy did not affect granules structure significantly. Bacteria branching within Clostridiaceae and Ruminococcaceae were present in this sludge. This work demonstrates that, methods applied to suppress H(2)-consuming microorganisms can cause changes in the macro- and microstructure of granular sludge, which can be incompatible with the operation of high-rate reactors.

摘要

采用热和两种化学处理(接触 2-溴乙磺酸钠(BES)和 BES+氯仿)处理厌氧颗粒,以抑制消耗氢气的微生物。三个中温扩展颗粒污泥床(EGSB)反应器-R(Heat)、R(BES)和 R(BES+Chlo)-用处理过的污泥接种,并以合成糖基废水(5 g(COD)L(-1),HRT 20-12 h)为食。通过定量图像分析和 16S rRNA 基因技术分别评估颗粒的形态完整性和细菌群落。R(Heat)中的氢气产量低于 300 mL H(2)L(-1)天(-1),在 HRT 降低后,氢气产量暂时达到 1000 mL H(2)L(-1)天(-1)。在 R(BES + Chlo)中,氢气产生率不超过 300 mL H(2)L(-1)天(-1),且出现颗粒碎裂、从聚集体中释放游离丝状菌和颗粒密度降低。在 R(BES)中,存在一个不稳定的产氢初始期,但 BES 的脉冲使其产氢率达到 700 ± 200 mL H(2)L(-1)天(-1)。该策略对颗粒结构没有明显影响。该污泥中存在梭菌科和瘤胃球菌科内的细菌分支。这项工作表明,用于抑制 H(2)消耗微生物的方法会导致颗粒污泥的宏观和微观结构发生变化,这可能与高速率反应器的运行不兼容。

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