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首页> 外文期刊>Journal of industrial microbiology & biotechnology >PCE dechlorination by non-Dehalococcoides in a microbial electrochemical system
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PCE dechlorination by non-Dehalococcoides in a microbial electrochemical system

机译:微生物电化学系统中非Dehaloccocoides对PCE的脱氯作用

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摘要

The bioremediation of tetrachloroethene (perchloroethene; PCE) contaminated sites generally requires a supply of some fermentable organic substrates as an electron donor. On the other hand, organic substrates can induce the massive growth of microorganisms around the injection wells, which can foul the contaminated subsurface environment. In this study, PCE dechlorination to ethene was performed in a microbial electrochemical system (MES) using the electrode (a cathode polarized at -500 mV vs. standard hydrogen electrode) as the electron donor. Denaturing gel gradient electrophoresis and pyrosequencing revealed a variety of non-Dehalococcoides bacteria dominant in MES, such as Acinetobacter sp. (25.7 % for AS1 in suspension of M3), Rhodopseudomonas sp. (10.5 % for AE1 and 10.1 % for AE2 in anodic biofilm of M3), Pseudomonas aeruginosa (22.4 % for BS1 in suspension of M4), and Enterobacter sp. (21.7 % for BE1 in anodic biofilm of M4) which are capable of electron transfer, hydrogen production and dechlorination. The Dehalococcoides group, however, was not detected in this system. Therefore, these results suggest that a range of bacterial species outside the Dehalococcoides can play an important role in the microbial electrochemical dechlorination process, which may lead to innovative bioremediation technology.
机译:四氯乙烯(全氯乙烯; PCE)污染部位的生物修复通常需要提供一些可发酵的有机底物作为电子供体。另一方面,有机底物可引起注入井周围微生物的大量生长,这可能污染被污染的地下环境。在这项研究中,使用电极(相对于标准氢电极在-500 mV极化的阴极)作为电子供体,在微生物电化学系统(MES)中将PCE脱氯成乙烯。变性凝胶梯度电泳和焦磷酸测序揭示了在MES中占主导地位的各种非Dehaloccocoides细菌,例如不动杆菌属。 (对于M3悬浮液中的AS1,为25.7%),Rhodopseudomonas sp.。 (在M3的阳极生物膜中AE1为10.5%,在AE2中为10.1%),铜绿假单胞菌(在M4悬浮液中为BS1为22.4%)和肠杆菌属。 (对于M4的阳极生物膜中的BE1为21.7%),能够进行电子转移,产氢和脱氯。但是,在该系统中未检测到Dehalococcoides组。因此,这些结果表明,Dehalococcoides以外的一系列细菌在微生物电化学脱氯过程中可以发挥重要作用,这可能会导致创新的生物修复技术。

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