Robust Hydrocarbon Degradation and Dynamics of Bacterial Communities during Nutrient-Enhanced Oil Spill Bioremediation
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Open Access
- 1 November 2002
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 68 (11) , 5537-5548
- https://doi.org/10.1128/aem.68.11.5537-5548.2002
Abstract
Degradation of oil on beaches is, in general, limited by the supply of inorganic nutrients. In order to obtain a more systematic understanding of the effects of nutrient addition on oil spill bioremediation, beach sediment microcosms contaminated with oil were treated with different levels of inorganic nutrients. Oil biodegradation was assessed respirometrically and on the basis of changes in oil composition. Bacterial communities were compared by numerical analysis of denaturing gradient gel electrophoresis (DGGE) profiles of PCR-amplified 16S rRNA genes and cloning and sequencing of PCR-amplified 16S rRNA genes. Nutrient amendment over a wide range of concentrations significantly improved oil degradation, confirming that N and P limited degradation over the concentration range tested. However, the extent and rate of oil degradation were similar for all microcosms, indicating that, in this experiment, it was the addition of inorganic nutrients rather than the precise amount that was most important operationally. Very different microbial communities were selected in all of the microcosms. Similarities between DGGE profiles of replicate samples from a single microcosm were high (95% ± 5%), but similarities between DGGE profiles from replicate microcosms receiving the same level of inorganic nutrients (68% ± 5%) were not significantly higher than those between microcosms subjected to different nutrient amendments (63% ± 7%). Therefore, it is apparent that the different communities selected cannot be attributed to the level of inorganic nutrients present in different microcosms. Bioremediation treatments dramatically reduced the diversity of the bacterial community. The decrease in diversity could be accounted for by a strong selection for bacteria belonging to the alkane-degrading Alcanivorax/Fundibacter group. On the basis of Shannon-Weaver indices, rapid recovery of the bacterial community diversity to preoiling levels of diversity occurred. However, although the overall diversity was similar, there were considerable qualitative differences in the community structure before and after the bioremediation treatments.Keywords
This publication has 63 references indexed in Scilit:
- Isolation, Characterization, and Polyaromatic Hydrocarbon Degradation Potential of Aerobic Bacteria from Marine Macrofaunal Burrow Sediments and Description ofLutibacterium anuloederansgen. nov., sp. nov., andCycloclasticus spirillensussp. novApplied and Environmental Microbiology, 2001
- Contribution of Aerobic Photoheterotrophic Bacteria to the Carbon Cycle in the OceanScience, 2001
- Biodegradation of n -Alkylcycloalkanes and n -Alkylbenzenes via New Pathways in Alcanivorax sp. Strain MBIC 4326Applied and Environmental Microbiology, 2001
- A Field Demonstration of the Efficacy of Bioremediation to Treat Oiled Shorelines Following the Sea Empress IncidentEnvironmental Technology, 1999
- Optimal Nitrate Concentration for the Biodegradation of n-Heptadecane in a Variably-Saturated Sand ColumnEnvironmental Technology, 1999
- Alcanivorax borkumensis gen. nov., sp. nov., a new, hydrocarbon-degrading and surfactant-producing marine bacteriumInternational Journal of Systematic and Evolutionary Microbiology, 1998
- Bioremediation of marine oil spillsTrends in Biotechnology, 1997
- Some environmental aspects of marine hydrocarbon bacteriologyAquatic Microbial Ecology, 1995
- Marinobacter hydrocarbonoclasticus gen. nov., sp. nov., a New, Extremely Halotolerant, Hydrocarbon-Degrading Marine BacteriumInternational Journal of Systematic and Evolutionary Microbiology, 1992
- Basic local alignment search toolJournal of Molecular Biology, 1990