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多氯联苯微生物脱氯研究进展

陈晨1,崔静岚1,秦智慧1,2,俞春娜3,陈曦1,沈超峰1,2,陈英旭1,2   

  1. (1浙江大学环境与资源学院环境保护研究所, 杭州 310058; 2浙江大学水环境研究院, 杭州 310058; 3杭州师范大学生物医药与健康研究中心, 杭州 311121)
  • 出版日期:2012-12-18 发布日期:2012-12-18

Research advances in microbial dechlorination of polychlorinated biphenyls.

CHEN Chen1, CUI Jing-lan1, QIN Zhi-hui1,2, YU Chun-na3, CHEN Xi1, SHEN Chao-feng1,2, CHEN Ying-xu1,2   

  1. (1Institute of Environmental Science and Technology, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou 310058, China; 2Academy of Water Science and Environmental Engineering, Zhejiang University, Hangzhou 310058, China; 3Center for Biomedicine and Health, Hangzhou Normal University, Hangzhou 311121, China)
  • Online:2012-12-18 Published:2012-12-18

摘要: 多氯联苯(polychlorinated biphenyls, PCBs)是环境中典型的氯代持久性有机污染物.微生物脱氯是一种氯代有机物自然降解模式,对全球PCBs特别是高氯代同系物消减起到至关重要的作用.厌氧条件下高氯代PCBs能够发生脱氯反应,使其毒性大大降低,脱氯后形成的低氯代化合物可以进一步好氧降解,直至完全矿化.本文综述了PCBs生物脱氯的研究进展,介绍了微生物脱氯反应的机理和特征、参与微生物脱氯过程的专性脱氯菌等,探讨了该微生物过程的影响因素及厌氧脱氯与好氧降解耦合的意义,并对脱氯微生物群落的复杂代谢网络研究、专性脱氯新菌种筛选及其污染地实际修复应用等未来研究方向进行了展望.

Abstract: Polychlorinated biphenyls (PCBs) are the typical persistent organic pollutants (POPs) in the environment. As a ubiquitous attenuation course of chlorinated organic compounds in anoxic environment, the microorganism-mediated reductive dechlorination process plays an important role in PCBs transformation, especially the transformation of higher chlorinated PCBs. The higher chlorinated PCBs can be dechlorinated in anaerobic condition, and thus, their persistence and toxicity can be decreased. The resultant lower chlorinated PCBs from the dechlorination can be further degraded and completely mineralized in aerobic condition. This paper summarized the research advances of PCBs microbial reductive dechlorination, introduced the mechanisms and characteristics of the dechlorination and the related specific microorganisms, and approached the affecting factors of PCBs bio-dechlorination, as well as the significances of anaerobic dechlorination coupling with aerobic degradation. The future research directions, including the complex metabolic networks of dechlorinating microbial populations, the screening of novel specific dechlorinators and their practical applications in the remediation of PCBs contaminated sites were also prospected.