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Water Res. 2018 Nov 1;144:226-234. doi: 10.1016/j.watres.2018.07.036. Epub 2018 Jul 17.
2
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Environ Sci Technol. 2018 Aug 7;52(15):8558-8567. doi: 10.1021/acs.est.7b06647. Epub 2018 May 18.
3
Identification of biphenyl-metabolising microbes in activated biosludge using cultivation-independent and -dependent approaches.采用培养依赖和不依赖的方法鉴定活性生物污泥中的联苯代谢微生物。
J Hazard Mater. 2018 Jul 5;353:534-541. doi: 10.1016/j.jhazmat.2018.04.028. Epub 2018 Apr 16.
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Intracellular toxicity exerted by PCBs and role of VBNC bacterial strains in biodegradation.多氯联苯的细胞内毒性及 VBNC 细菌菌株在生物降解中的作用。
Ecotoxicol Environ Saf. 2018 Aug 15;157:40-60. doi: 10.1016/j.ecoenv.2018.03.014. Epub 2018 Mar 30.
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Crit Rev Biotechnol. 2018 Nov;38(7):1025-1048. doi: 10.1080/07388551.2018.1427697. Epub 2018 Feb 1.
6
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Novel bacteria capable of degrading phenanthrene in activated sludge revealed by stable-isotope probing coupled with high-throughput sequencing.稳定同位素探针对耦合高通量测序揭示活性污泥中新型菲降解菌
Biodegradation. 2017 Dec;28(5-6):423-436. doi: 10.1007/s10532-017-9806-9. Epub 2017 Sep 27.
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Formation of hydroxylated and methoxylated polychlorinated biphenyls by Bacillus subtilis: New insights into microbial metabolism.枯草芽孢杆菌生成羟基化和甲氧基化多氯联苯:微生物代谢的新见解。
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利用稳定同位素探针技术驯化土著菌 sp. 菌株 M1,该菌能降解工业废水中的菲和联苯。

Stable-Isotope Probing-Enabled Cultivation of the Indigenous Bacterium sp. Strain M1, Capable of Degrading Phenanthrene and Biphenyl in Industrial Wastewater.

机构信息

State Key Laboratory of Organic Geochemistry, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou, China.

State Key Laboratory of Organic Geochemistry, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou, China

出版信息

Appl Environ Microbiol. 2019 Jul 1;85(14). doi: 10.1128/AEM.00511-19. Print 2019 Jul 15.

DOI:10.1128/AEM.00511-19
PMID:31053587
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6606873/
Abstract

To identify and obtain the indigenous degraders metabolizing phenanthrene (PHE) and biphenyl (BP) from the complex microbial community within industrial wastewater, DNA-based stable-isotope probing (DNA-SIP) and cultivation-based methods were applied in the present study. DNA-SIP results showed that two bacterial taxa ( and ) were considered the key biodegraders responsible for PHE biodegradation only, whereas and were involved in BP degradation. and have not been linked with PHE degradation previously. Additionally, DNA-SIP helped reveal the taxonomic identity of -like degraders involved in both PHE and BP degradation. To target the separation of functional -like degraders from the wastewater, we modified the traditional cultivation medium and culture conditions. Finally, an indigenous PHE- and BP-degrading strain, M1, was isolated via a cultivation-dependent method, and its role in PHE and BP degradation was confirmed by enrichment of the 16S rRNA gene and distinctive dioxygenase genes in the DNA-SIP experiment. Our study has successfully established a program for the application of DNA-SIP in the isolation of the active functional degraders from an environment. It also deepens our insight into the diversity of indigenous PHE- and BP-degrading communities. The comprehensive treatment of wastewater in industrial parks suffers from the presence of multiple persistent organic pollutants (POPs), such as polycyclic aromatic hydrocarbons (PAHs) and polychlorinated biphenyls (PCBs), which reduce the activity of activated sludge and are difficult to eliminate. Characterizing and applying active bacterial degraders metabolizing multiple POPs therefore helps to reveal the mechanisms of synergistic metabolism and to improve wastewater treatment efficiency in industrial parks. To date, SIP studies have successfully investigated the biodegradation of PAHs or PCBs in real-world habitats. DNA-SIP facilitates the isolation of target microorganisms that pose environmental concerns. Here, an indigenous phenanthrene (PHE)- and biphenyl (BP)-degrading strain in wastewater, M1, was isolated via a cultivation-dependent method, and its role in PHE and BP degradation was confirmed by DNA-SIP. Our study provides a routine protocol for the application of DNA-SIP in the isolation of the active functional degraders from an environment.

摘要

为了从工业废水中复杂的微生物群落中鉴定和获取代谢菲(PHE)和联苯(BP)的本土降解菌,本研究应用了基于 DNA 的稳定同位素探针(DNA-SIP)和培养方法。DNA-SIP 结果表明,两个细菌类群( 和 )被认为是仅负责 PHE 生物降解的关键降解菌,而 和 则参与 BP 降解。 和 以前与 PHE 降解没有联系。此外,DNA-SIP 有助于揭示参与 PHE 和 BP 降解的类似 - 样降解菌的分类学身份。为了从废水中分离功能类似 - 样降解菌,我们修改了传统的培养培养基和培养条件。最后,通过一种依赖培养的方法,从废水中分离出一株土著 PHE 和 BP 降解菌 M1,并通过 DNA-SIP 实验中富集 16S rRNA 基因和独特的双加氧酶基因,证实了该菌在 PHE 和 BP 降解中的作用。本研究成功建立了一个应用 DNA-SIP 从环境中分离活性功能降解菌的方案。它还加深了我们对土著 PHE 和 BP 降解菌群落多样性的了解。工业园区综合废水处理存在多环芳烃(PAHs)和多氯联苯(PCBs)等多种持久性有机污染物(POPs),这些污染物降低了活性污泥的活性,难以消除。因此,表征和应用代谢多种 POPs 的活性细菌降解菌有助于揭示协同代谢的机制,并提高工业园区的废水处理效率。迄今为止,SIP 研究已成功调查了真实环境中 PAHs 或 PCBs 的生物降解。DNA-SIP 有助于分离出具有环境问题的目标微生物。在这里,通过一种依赖培养的方法,从废水中分离出一株土著菲(PHE)和联苯(BP)降解菌 M1,并通过 DNA-SIP 证实了该菌在 PHE 和 BP 降解中的作用。本研究提供了一种常规方案,用于应用 DNA-SIP 从环境中分离活性功能降解菌。