基于功能基因表达的高氯酸盐与硝酸盐氮修复

谢宇轩, 刘菲, 关翔宇, 于丽莎, 王阳. 基于功能基因表达的高氯酸盐与硝酸盐氮修复[J]. 环境工程学报, 2014, 8(4): 1423-1428.
引用本文: 谢宇轩, 刘菲, 关翔宇, 于丽莎, 王阳. 基于功能基因表达的高氯酸盐与硝酸盐氮修复[J]. 环境工程学报, 2014, 8(4): 1423-1428.
Xie Yuxuan, Liu Fei, Guan Xiangyu, Yu Lisha, Wang Yang. Perchlorate and nitrate-nitrogen bioremediation based on expression of functional genes[J]. Chinese Journal of Environmental Engineering, 2014, 8(4): 1423-1428.
Citation: Xie Yuxuan, Liu Fei, Guan Xiangyu, Yu Lisha, Wang Yang. Perchlorate and nitrate-nitrogen bioremediation based on expression of functional genes[J]. Chinese Journal of Environmental Engineering, 2014, 8(4): 1423-1428.

基于功能基因表达的高氯酸盐与硝酸盐氮修复

  • 基金项目:

    国家自然科学基金资助项目(41272268)

    国家国际科技合作专项(2010DFA92800)

  • 中图分类号: Q89

Perchlorate and nitrate-nitrogen bioremediation based on expression of functional genes

  • Fund Project:
  • 摘要: 为更好地研究环境中高氯酸盐离子(ClO4-)与硝酸盐氮(NO3--N)混合污染的共同降解。选用pcrA、cld基因表征参与高氯酸盐降解的细菌,NirS基因表征反硝化细菌,16S rRNA基因表征整个细菌群落的活性。通过对高浓度硝酸盐氮与高氯酸盐混合污染降解体系内不同时间点不同种基因的表达分析,实时定量的反应复杂环境中混合污染物生物降解机理。结果表明,在外源添加足够的醋酸盐作为电子供体条件下,NO3--N与ClO4-质量浓度比为5:1时,硝酸盐氮的存在不会完全抑制ClO4-的降解,当NO3--N降解完全时,可以加快ClO4-的降解过程。在有硝酸盐氮存在的混合降解体系内,pcrA和cld基因与ClO4-的浓度变化之间的相关性不是很高,证明该功能基因对复杂环境中特定生物群落的表征有一定局限性。
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出版历程
  • 收稿日期:  2014-01-04
  • 刊出日期:  2014-03-28
谢宇轩, 刘菲, 关翔宇, 于丽莎, 王阳. 基于功能基因表达的高氯酸盐与硝酸盐氮修复[J]. 环境工程学报, 2014, 8(4): 1423-1428.
引用本文: 谢宇轩, 刘菲, 关翔宇, 于丽莎, 王阳. 基于功能基因表达的高氯酸盐与硝酸盐氮修复[J]. 环境工程学报, 2014, 8(4): 1423-1428.
Xie Yuxuan, Liu Fei, Guan Xiangyu, Yu Lisha, Wang Yang. Perchlorate and nitrate-nitrogen bioremediation based on expression of functional genes[J]. Chinese Journal of Environmental Engineering, 2014, 8(4): 1423-1428.
Citation: Xie Yuxuan, Liu Fei, Guan Xiangyu, Yu Lisha, Wang Yang. Perchlorate and nitrate-nitrogen bioremediation based on expression of functional genes[J]. Chinese Journal of Environmental Engineering, 2014, 8(4): 1423-1428.

基于功能基因表达的高氯酸盐与硝酸盐氮修复

  • 1. 中国地质大学(北京)水资源与环境学院, 北京 100083
  • 2. 中国地质大学(北京)海洋学院, 北京 100083
基金项目:

国家自然科学基金资助项目(41272268)

国家国际科技合作专项(2010DFA92800)

摘要: 为更好地研究环境中高氯酸盐离子(ClO4-)与硝酸盐氮(NO3--N)混合污染的共同降解。选用pcrA、cld基因表征参与高氯酸盐降解的细菌,NirS基因表征反硝化细菌,16S rRNA基因表征整个细菌群落的活性。通过对高浓度硝酸盐氮与高氯酸盐混合污染降解体系内不同时间点不同种基因的表达分析,实时定量的反应复杂环境中混合污染物生物降解机理。结果表明,在外源添加足够的醋酸盐作为电子供体条件下,NO3--N与ClO4-质量浓度比为5:1时,硝酸盐氮的存在不会完全抑制ClO4-的降解,当NO3--N降解完全时,可以加快ClO4-的降解过程。在有硝酸盐氮存在的混合降解体系内,pcrA和cld基因与ClO4-的浓度变化之间的相关性不是很高,证明该功能基因对复杂环境中特定生物群落的表征有一定局限性。

English Abstract

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