Bioaugmentation of soils by increasing microbial richness: missing links

被引:124
作者
Dejonghe, W [1 ]
Boon, N [1 ]
Seghers, D [1 ]
Top, EM [1 ]
Verstraete, W [1 ]
机构
[1] Lab Microbial Ecol & Technol, Ghent, Belgium
关键词
D O I
10.1046/j.1462-2920.2001.00236.x
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
It is generally assumed that increased microbial diversity corresponds to increased catabolic potential and, hence, to better removal of metabolites and pollutants. Yet, microbial diversity, more specifically richness of species in environmental samples and sites, is difficult to assess. It is proposed to interpret this diversity more in the framework of Pareto's law, i.e. 20% of the species govern 80% of the energy flux of the ecosystem. Ecological studies should attempt to delineate the main energy fluxes and that group of species playing quantitative key roles in the system. Consequently, bioaugmentation should aim at the rearrangement of the group of organisms dominantly involved in the overall energy flux, so that specific catabolic traits necessary for the clean up of pollutants are part of that active group. For soil ecosystems, the capacity of plant roots as creators of physical and chemical discontinuity should be used more strategically to bring about such rearrangements. Overall, this paper identifies a number of ecological concepts, such as the Pareto law, the Gompertz model and plant community-induced microbial competence, which may, given careful underpinning, open new perspectives for microbial ecology and biodegradation.
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收藏
页码:649 / 657
页数:9
相关论文
共 103 条
[1]   Linking ecological and ecotoxicological techniques to support river rehabilitation [J].
Admiraal, W ;
Barranguet, C ;
van Beusekom, SAM ;
Bleeker, EAJ ;
van den Ende, FP ;
van der Geest, HG ;
Groenendijk, D ;
Ivorra, N ;
Kraak, MHS ;
Stuijfzand, SC .
CHEMOSPHERE, 2000, 41 (1-2) :289-295
[2]  
AKKERMANS ADL, 1994, FEMS MICROBIOL REV, V15, P185, DOI 10.1016/0168-6445(94)90112-0
[3]  
Alexander M., 1994, Biodegradation and bioremediation., P226
[4]   Survival and activity of an atrazine-mineralizing bacterial consortium in rhizosphere soil [J].
Alvey, S ;
Crowley, DE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (05) :1596-1603
[5]   FLUORESCENT-OLIGONUCLEOTIDE PROBING OF WHOLE CELLS FOR DETERMINATIVE, PHYLOGENETIC, AND ENVIRONMENTAL-STUDIES IN MICROBIOLOGY [J].
AMANN, RI ;
KRUMHOLZ, L ;
STAHL, DA .
JOURNAL OF BACTERIOLOGY, 1990, 172 (02) :762-770
[6]   PHYLOGENETIC IDENTIFICATION AND IN-SITU DETECTION OF INDIVIDUAL MICROBIAL-CELLS WITHOUT CULTIVATION [J].
AMANN, RI ;
LUDWIG, W ;
SCHLEIFER, KH .
MICROBIOLOGICAL REVIEWS, 1995, 59 (01) :143-169
[7]   Degradation of 2,4,6-trichlorophenol by a specialized organism and by indigenous soil microflora: bioaugmentation and self-remediability for soil restoration [J].
Andreoni, V ;
Baggi, G ;
Colombo, M ;
Cavalca, L ;
Zangrossi, M ;
Bernasconi, S .
LETTERS IN APPLIED MICROBIOLOGY, 1998, 27 (02) :86-92
[8]   Plant-induced changes in soil structure: Processes and feedbacks [J].
Angers, DA ;
Caron, J .
BIOGEOCHEMISTRY, 1998, 42 (1-2) :55-72
[9]   Bioremediation of pentachlorophenol-contaminated soil by bioaugmentation using activated soil [J].
Barbeau, C ;
Deschênes, L ;
Karamanev, D ;
Comeau, Y ;
Samson, R .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 1997, 48 (06) :745-752
[10]   ACCELERATED PARATHION DEGRADATION IN SOIL INOCULATED WITH ACCLIMATED BACTERIA UNDER FIELD CONDITIONS [J].
BARLES, RW ;
DAUGHTON, CG ;
HSIEH, DPH .
ARCHIVES OF ENVIRONMENTAL CONTAMINATION AND TOXICOLOGY, 1979, 8 (06) :647-660