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Respiratory Vinyl Chloride Reductive Dechlorination to Ethene in TceA-Expressing Dehalococcoides mccartyi

机译:呼吸氯乙烯还原脱氯与乙烯在表达TCEA的去卤体麦卡替市

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摘要

Bio remediation of chlorinated ethenes in anoxic aquifers hinges on organohalide-respiring Dehalococcoidia expressing vinyl chloride (VC) reductive dehalogenase (RDase). The tceA gene encoding the trichloroethene-dechlorinating RDase TceA is frequently detected in contaminated groundwater but not recognized as a biomarker for VC detoxification. We demonstrate that tcea-carrying Dehalococcoides mccartyi (Dhc) strains FL2 and 195 grow with VC as an electron acceptor when sufficient vitamin B_(12) (B_(12)) is provided. Strain FL2 cultures that received 50μg L~(-1) B_12 completely dechlorinated VC to ethene at rates of 14.80 ± 1.30μM day~(-1) and attained 1.64 ± 0.11 × 10~8 cells per μmol of VC consumed. Strain 195 attained similar growth yields of 1.80 ± 1.00×10~8 cells per μmol of VC consumed, and both strains could be consecutively transferred with VC as the electron acceptor. Proteomic analysis demonstrated TceA expression in VC-grown strain FL2 cultures. Resequencing of the strain FL2 and strain 195 tceA genes identified non-synonymous substitutions, although their consequences for TceA function are currently unknown. The finding that Dhc strains expressing TceA respire VC can explain ethene formation at chlorinated solvent sites, where quantitative polymerase chain reaction analysis indicates that tceA dominates the RDase gene pool.
机译:生物含氯化血管血管杂液中的生物修复铰链,表达氯乙烯(Vc)还原脱氢酶(RDase)的有机卤化物 - 呼吸脱卤素。在污染的地下水中经常检测到编码三氯乙烯 - 脱氯的RDaseTCea的TCeA基因,但不能被认为是VC排毒的生物标志物。我们证明,当提供足够的维生素B_(12)(B_(12))时,TCeA携带的去卤体McCartyi(DHC)菌株FL2和195在提供足够的维生素B_(12))时,将VC作为电子受体生长。应变FL2培养物,其接受50μg1(-1)B_12完全脱氯的Vc至乙烯,率为14.80±1.30μm天〜(-1),每μmolvc达到1.64±0.11×10〜8个细胞。菌株195达到了每μmolvc的相似生长产率为1.80±1.00×10〜8个细胞,并且两种菌株可以用VC作为电子受体连续转移。蛋白质组学分析表现出VC生长菌株FL2培养物中的TCEA表达。菌株FL2和菌株195 TCEA基因的重新排序鉴定了非同义取代,尽管它们对TCEA功能的后果目前未知。发现表达TCEA呼吸VC的DHC菌株可以解释氯化溶剂位点的乙烯形成,其中定量聚合酶链反应分析表明TCEA占RDase基因库。

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  • 来源
    《Environmental Science & Technology》 |2021年第8期|4831-4841|共11页
  • 作者单位

    Key Laboratory of Pollution Control and Environmental Engineering Institute of Applied Ecology Chinese Academy of Sciences Shenyang Liaoning 110016 China Department of Microbiology University of Tennessee Knoxville Tennessee 37996 United States;

    Key Laboratory of Pollution Control and Environmental Engineering Institute of Applied Ecology Chinese Academy of Sciences Shenyang Liaoning 110016 China University of Chinese Academy of Sciences Beijing 100049 China;

    Biosciences Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831 United States;

    Key Laboratory of Pollution Control and Environmental Engineering Institute of Applied Ecology Chinese Academy of Sciences Shenyang Liaoning 110016 China University of Chinese Academy of Sciences Beijing 100049 China;

    Biosciences Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831 United States;

    Key Laboratory of Pollution Control and Environmental Engineering Institute of Applied Ecology Chinese Academy of Sciences Shenyang Liaoning 110016 China;

    Key Laboratory of Pollution Control and Environmental Engineering Institute of Applied Ecology Chinese Academy of Sciences Shenyang Liaoning 110016 China;

    Department of Microbiology University of Tennessee Knoxville Tennessee 37996 United States;

    Biosciences Division Oak Ridge National Laboratory Oak Ridge Tennessee 37831 United States;

    Department of Microbiology Center for Environmental Biotechnology Department of Civil and Environmental Engineering and Department of Biosystems Engineering & Soil Science University of Tennessee Knoxville Tennessee 37996 United States Biosciences Division and Joint Institute for Biological Sciences (JIBS) Oak Ridge National Laboratory Oak Ridge Tennessee 37831 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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