[1] |
周月明,刘娜,张兰英,等. 耐低温混菌降解苯系物的特性及菌种鉴定研究. 生态环境学报, 2010, 19(7): 1893-1900 Zhou Y. M., Liu N., Zhang L. Y., et al. Investigation of biodegrading characteristics of BTEX by low-temperature-tolerated bacterial colony. Ecology and Environmental Sciences, 2010, 19(7): 1893-1900(in Chinese)
|
[2] |
叶峰. 降解BTX的复合微生物菌剂制备及高效降解菌的研究. 杭州: 浙江工业大学硕士学位论文, 2009 Ye F. Research on preparation of composite microorganism agent and Its high-efficiency microbial strains degrading BTX. Hangzhou:Master Dissertation of Zhejiang University of Technology, 2009(in Chinese)
|
[3] |
章剑丽. 地下水石油类污染物(BTEX)的微生物降解实验研究. 上海: 上海交通大学硕士学位论文, 2010 Zhang J. L.Experient on biodegradation of BTEX contaminant in groundwater. Shanghai:Master Dissertation of Shanghai University, 2010(in Chinese)
|
[4] |
刘秀丽. 地下水中 BTEX 的迁移规律及其原位生物修复技术研究. 天津: 天津大学博士学位论文, 2010 Liu X L.Transport and removal of BTEX in groundwater using in situ bioremediation technology.Tianjin:Doctor Dissertation of Tianjin University, 2010(in Chinese)
|
[5] |
吴丹, 李法云, 杨姝倩,等. 采用优势菌降解 BTEX 和石油烃的性能. 辽宁工程技术大学学报(自然科学版), 2004, 29(2): 316-319 Wu D., Li F. Y., Yang S. J., et al. Biodegradation of petroleum hydrocarbon and BTEX by dominant strains. Journal of Liaoning Technical University(Natural Science), 2004, 29(2): 316-319 (in Chinese)
|
[6] |
张倩. 高盐条件BTEX降解菌群多样性、降解基因型及相容性溶质分析. 上海: 华东理工大学硕士学位论文, 2012 Zhang Q. Community diversity, degrading gene and compatible solutes of BTEX degrading bacterial consortium in high salinity. Shanghai: Master Dissertation of East China University of Science and Technology, 2012(in Chinese)
|
[7] |
Briones A., Raskinl. Diversity and dynamics of microbial communities in engineered environments and their implications for process stability. Curr Opin Biotechnol,2003, 14(3): 270-276
|
[8] |
Cansteinh F., Li Y., Felske A., et al. Longterm stability of mercury reducing microbial biofilm communities analyzed by 16S-23S rDNA interspacer region polymorphism. Microb. Ecol., 2001, 42(4): 624-634
|
[9] |
Fernandez A. S., Huang S., Seston S., et al. How stable is stable function versus community composition. Appl. Environ. Microbiol., 1999, 65(8): 3697-3704
|
[10] |
Fernandez A. S., Hashsham S. A., Dollhope S. L., et al. Flexible community structure correlates with stable community function in methanogenic bioreactor communities perturbed by glucose. Appl. Environ. Microbiol., 2000, 66(9): 4060-4067
|
[11] |
Hashsham S. A., Fernandez A. S., Dollhope S. L., et al. Parallel processing of substrate correlates with greater functional stability in methanogenic bioreactor communities perturbed by glucose. Appl. Environ. Microbiol., 2000, 66(9):4050-4057
|
[12] |
Smith N. R., Yu Z., Mohn W. W. Stability of the bacterial community in a pulp mill effluent treatment systerm during normal operation and a systerm shutdown. Water Res., 2003, 37(20): 4873-4884
|
[13] |
Saikaly P. E., Oerther D. B. Bacterial competition in activated sludge: Theoretical analysis of varying solid retention times on diversity. Microb. Ecol., 2004, 48(2): 274-284
|
[14] |
Kerr B., Riley M. A., Feldman M. W., et al. Local dispersal promotes biodiversity in a real-life game of rock-paper-scissors. Nature, 2002, 418(6894): 171-174
|
[15] |
Hobley, King J. R., Sockett R. E. Bdellovibrio predation in the presence of decoys: Three-way bacterial interactions revealed by mathematical and experimental analyses. Appl. Environ. Microbiol., 2005, 72(10): 6757-6765
|
[16] |
Tait K., Sutherland I. W. Antagonistic interactions amongst bacteriocin-producing enteric bacteria in dual species biofilms. Appl. Microbiol., 2002, 93(2): 345-352
|
[17] |
Menge B. A. Indirect effects in marine rocky intertidal interaction webs: Patterns and importance. Ecol Monogr, 1995, 65(1): 21-74
|
[18] |
Kato S., Haruta S., Cui Z. J., et al. Network relationships of bacteria in a stable mixed culture. Microb. Ecol., 2008, 56(3): 403-411
|
[19] |
Haruta S., Cui Z., Huang Z., et al. Construction of a stable microbial community with high cellulose-degradation ability. Appl. Microbiol. Biotechnol., 2002, 59(4-5): 529-534
|
[20] |
Kato S., Haruta S., Cui Z. J., et al. Effective cellulose degradation by a mixed-culture system composed of a cellulolytic Clostridium and aerobic non-cellulolytic bacteria. FEMS Microbiology Ecology, 2004, 51(1): 133-142
|
[21] |
Kato S., Haruta S., Cui Z. J., et al. Stable coexistence of five bacterial strains as a cellulose-degrading community. Applied and Environmental Microbiology, 2005, 17(11): 7099-7106
|
[22] |
王琳, 邵宗泽. 4株苯系物降解菌菌株的筛选鉴定、降解特性及其降解基因研究. 微生物学报, 2006, 46(5): 1-5 Wang L., Shao Z. Z. Isolation and characterization of 4 benzene toluene-degrading bacterial strains and detection of related degradation genes. Acta Microbiologica Sinica, 2006, 46(5): 1-5 (in Chinese)
|
[23] |
刘鹏, 魏亚东, 崔铁军. Biolog系统和16SrDNA序列分析方法在植物病原细菌鉴定中的应用. 植物检疫, 2006, 20(2): 86-87 Liu P., Wei Y. D., Cui T. J. Application of plant pathogenic bacteria identification with BIOLOG automatic microbiology analysis systerm and 16SrDNA sequential analysis systerm. Plant Quaratine, 2006, 20(2): 86-87 (in Chinese)
|
[24] |
杜昕波, 赵耘, 李伟杰, 等. 利用BIOLOG系统对不同种类细菌鉴定的研究. 中国兽药杂志, 2008, 42(3): 31-33 Du X. B., Zhao Y., Li W. J., et al. Research of identification of several strains bacteria with BIOLOG automatic microbiology analysis systerm. Chinese Journal of Veterinary, 2008, 42(3): 31-33 (in Chinese)
|