Distribution of Naphthalene Dioxygenase Genes in Crude Oil-Contaminated Soils

被引:0
|
作者
Yuyin Yang
Jie Wang
Jingqiu Liao
Shuguang Xie
Yi Huang
机构
[1] Peking University,State Key Joint Laboratory of Environmental Simulation and Pollution Control, College of Environmental Sciences and Engineering
来源
Microbial Ecology | 2014年 / 68卷
关键词
PAHs; Total Organic Carbon; Total Petroleum Hydrocarbon; Dioxygenase Gene; Indigenous Microbial Population;
D O I
暂无
中图分类号
学科分类号
摘要
Polycyclic aromatic hydrocarbons (PAHs) are one of the major pollutants in soils in oil exploring areas. Biodegradation is the major process for natural elimination of PAHs from contaminated soils. Functional genes can be used as biomarkers to assess the biodegradation potential of indigenous microbial populations. However, little is known about the distribution of PAH-degrading genes in the environment. The links between environmental parameters and the distribution of PAH metabolic genes remain essentially unclear. The present study investigated the abundance and diversity of naphthalene dioxygenase genes in the oil-contaminated soils in the Shengli Oil Field (China). Spatial variations in the density and diversity of naphthalene dioxygenase genes occurred in this area. Four different sequence genotypes were observed in the contaminated soils, with the predominance of novel PAH-degrading genes. Pearson’s correlation analysis illustrated that gene abundance had positive correlations with the levels of total organic carbon and aromatic hydrocarbons, while gene diversity showed a negative correlation with the level of polar aromatics. This work could provide some new insights toward the distribution of PAH metabolic genes and PAH biodegradation potential in oil-contaminated ecosystems.
引用
收藏
页码:785 / 793
页数:8
相关论文
共 50 条
  • [31] Method of ecological assessment of oil-contaminated soils
    Romaniuk, O. I.
    Shevchyk, L. Z.
    Oshchapovskyy, I. V.
    Zhak, T. V.
    [J]. VISNYK OF DNIPROPETROVSK UNIVERSITY-BIOLOGY ECOLOGY, 2016, 24 (02): : 264 - 269
  • [32] TREATMENT OF OIL-CONTAMINATED SOILS FOR IDENTIFICATION AND CLASSIFICATION
    MEEGODA, NJ
    RATNAWEERA, P
    [J]. GEOTECHNICAL TESTING JOURNAL, 1995, 18 (01): : 41 - 49
  • [33] Complex conductivity of oil-contaminated clayey soils
    Deng, Yaping
    Shi, Xiaoqing
    Revil, Andre
    Wu, Jichun
    Ghorbani, A.
    [J]. JOURNAL OF HYDROLOGY, 2018, 561 : 930 - 942
  • [34] PROCESS FOR THE INSITU RESTORATION OF OIL-CONTAMINATED SOILS
    COUILLARD, D
    TRAN, FT
    TYAGI, RD
    [J]. JOURNAL OF ENVIRONMENTAL MANAGEMENT, 1991, 32 (01) : 19 - 34
  • [35] Bioindication of oil-contaminated soils using invertebrates
    Melekhina, E. N.
    Taskaeva, A. A.
    [J]. THEORETICAL AND APPLIED ECOLOGY, 2021, (04): : 181 - 186
  • [36] Evaluation of bioremediation effectiveness on crude oil-contaminated sand
    Kim, SJ
    Choi, DH
    Sim, DS
    Oh, YS
    [J]. CHEMOSPHERE, 2005, 59 (06) : 845 - 852
  • [37] THERMAL METHOD FOR CLEANING OIL-CONTAMINATED SOILS
    Qasimov, Elmar E.
    [J]. PROCESSES OF PETROCHEMISTRY AND OIL REFINING, 2022, 23 (01): : 13 - 18
  • [38] Comparison of plant growth and remediation potential of pyrochar and thermal desorption for crude oil-contaminated soils
    Ilyas, Noshin
    Shoukat, Uzma
    Saeed, Maimona
    Akhtar, Nosheen
    Yasmin, Humaira
    Khan, Wajiha
    Iqbal, Sumera
    [J]. SCIENTIFIC REPORTS, 2021, 11 (01)
  • [39] Phytosociology and antioxidant profile study for selecting potent herbs for phytoremediation of crude oil-contaminated soils
    Boruah, Tridip
    Chakravarty, Paramita
    Deka, Hemen
    [J]. ENVIRONMENTAL MONITORING AND ASSESSMENT, 2020, 192 (12)
  • [40] Performance and Kinetics of Bioaugmentation, Biostimulation, and Natural Attenuation Processes for Bioremediation of Crude Oil-Contaminated Soils
    Yaman, Cevat
    [J]. PROCESSES, 2020, 8 (08)