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1.
Proc Natl Acad Sci U S A ; 114(28): 7432-7437, 2017 07 11.
Artigo em Inglês | MEDLINE | ID: mdl-28652349

RESUMO

The Deepwater Horizon (DWH) accident released an estimated 4.1 million barrels of oil and 1010 mol of natural gas into the Gulf of Mexico, forming deep-sea plumes of dispersed oil droplets and dissolved gases that were largely degraded by bacteria. During the course of this 3-mo disaster a series of different bacterial taxa were enriched in succession within deep plumes, but the metabolic capabilities of the different populations that controlled degradation rates of crude oil components are poorly understood. We experimentally reproduced dispersed plumes of fine oil droplets in Gulf of Mexico seawater and successfully replicated the enrichment and succession of the principal oil-degrading bacteria observed during the DWH event. We recovered near-complete genomes, whose phylogeny matched those of the principal biodegrading taxa observed in the field, including the DWH Oceanospirillales (now identified as a Bermanella species), multiple species of Colwellia, Cycloclasticus, and other members of Gammaproteobacteria, Flavobacteria, and Rhodobacteria. Metabolic pathway analysis, combined with hydrocarbon compositional analysis and species abundance data, revealed substrate specialization that explained the successional pattern of oil-degrading bacteria. The fastest-growing bacteria used short-chain alkanes. The analyses also uncovered potential cooperative and competitive relationships, even among close relatives. We conclude that patterns of microbial succession following deep ocean hydrocarbon blowouts are predictable and primarily driven by the availability of liquid petroleum hydrocarbons rather than natural gases.


Assuntos
Biodegradação Ambiental , Hidrocarbonetos/metabolismo , Poluição por Petróleo , Petróleo , Bactérias/metabolismo , Biodiversidade , Simulação por Computador , Genoma Bacteriano , Golfo do México , Filogenia , RNA Ribossômico 16S/análise , Fatores de Tempo , Microbiologia da Água
2.
Environ Sci Technol ; 47(19): 10860-7, 2013 Oct 01.
Artigo em Inglês | MEDLINE | ID: mdl-23937111

RESUMO

The Deepwater Horizon oil spill produced large subsurface plumes of dispersed oil and gas in the Gulf of Mexico that stimulated growth of psychrophilic, hydrocarbon degrading bacteria. We tracked succession of plume bacteria before, during and after the 83-day spill to determine the microbial response and biodegradation potential throughout the incident. Dominant bacteria shifted substantially over time and were dependent on relative quantities of different hydrocarbon fractions. Unmitigated flow from the wellhead early in the spill resulted in the highest proportions of n-alkanes and cycloalkanes at depth and corresponded with dominance by Oceanospirillaceae and Pseudomonas. Once partial capture of oil and gas began 43 days into the spill, petroleum hydrocarbons decreased, the fraction of aromatic hydrocarbons increased, and Colwellia, Cycloclasticus, and Pseudoalteromonas increased in dominance. Enrichment of Methylomonas coincided with positive shifts in the δ(13)C values of methane in the plume and indicated significant methane oxidation occurred earlier than previously reported. Anomalous oxygen depressions persisted at plume depths for over six weeks after well shut-in and were likely caused by common marine heterotrophs associated with degradation of high-molecular-weight organic matter, including Methylophaga. Multiple hydrocarbon-degrading bacteria operated simultaneously throughout the spill, but their relative importance was controlled by changes in hydrocarbon supply.


Assuntos
Bactérias/metabolismo , Hidrocarbonetos/metabolismo , Poluição por Petróleo , Poluentes Químicos da Água/metabolismo , Bactérias/genética , Biodegradação Ambiental , DNA Bacteriano/genética , Golfo do México , Hidrocarbonetos/análise , Microbiologia da Água , Poluentes Químicos da Água/análise
3.
PLoS One ; 7(7): e41305, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-22815990

RESUMO

Coastal salt marshes are highly sensitive wetland ecosystems that can sustain long-term impacts from anthropogenic events such as oil spills. In this study, we examined the microbial communities of a Gulf of Mexico coastal salt marsh during and after the influx of petroleum hydrocarbons following the Deepwater Horizon oil spill. Total hydrocarbon concentrations in salt marsh sediments were highest in June and July 2010 and decreased in September 2010. Coupled PhyloChip and GeoChip microarray analyses demonstrated that the microbial community structure and function of the extant salt marsh hydrocarbon-degrading microbial populations changed significantly during the study. The relative richness and abundance of phyla containing previously described hydrocarbon-degrading bacteria (Proteobacteria, Bacteroidetes, and Actinobacteria) increased in hydrocarbon-contaminated sediments and then decreased once hydrocarbons were below detection. Firmicutes, however, continued to increase in relative richness and abundance after hydrocarbon concentrations were below detection. Functional genes involved in hydrocarbon degradation were enriched in hydrocarbon-contaminated sediments then declined significantly (p<0.05) once hydrocarbon concentrations decreased. A greater decrease in hydrocarbon concentrations among marsh grass sediments compared to inlet sediments (lacking marsh grass) suggests that the marsh rhizosphere microbial communities could also be contributing to hydrocarbon degradation. The results of this study provide a comprehensive view of microbial community structural and functional dynamics within perturbed salt marsh ecosystems.


Assuntos
Poluição por Petróleo , Áreas Alagadas , Alabama , Ecossistema , Cromatografia Gasosa-Espectrometria de Massas/métodos , Geografia , Sedimentos Geológicos , Golfo do México , Hidrocarbonetos/química , Análise de Sequência com Séries de Oligonucleotídeos , Petróleo/metabolismo , Reação em Cadeia da Polimerase , Rizosfera , Sais/química , Análise de Sequência de DNA
4.
ISME J ; 6(9): 1715-27, 2012 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-22717885

RESUMO

The Deepwater Horizon oil spill in the Gulf of Mexico resulted in a deep-sea hydrocarbon plume that caused a shift in the indigenous microbial community composition with unknown ecological consequences. Early in the spill history, a bloom of uncultured, thus uncharacterized, members of the Oceanospirillales was previously detected, but their role in oil disposition was unknown. Here our aim was to determine the functional role of the Oceanospirillales and other active members of the indigenous microbial community using deep sequencing of community DNA and RNA, as well as single-cell genomics. Shotgun metagenomic and metatranscriptomic sequencing revealed that genes for motility, chemotaxis and aliphatic hydrocarbon degradation were significantly enriched and expressed in the hydrocarbon plume samples compared with uncontaminated seawater collected from plume depth. In contrast, although genes coding for degradation of more recalcitrant compounds, such as benzene, toluene, ethylbenzene, total xylenes and polycyclic aromatic hydrocarbons, were identified in the metagenomes, they were expressed at low levels, or not at all based on analysis of the metatranscriptomes. Isolation and sequencing of two Oceanospirillales single cells revealed that both cells possessed genes coding for n-alkane and cycloalkane degradation. Specifically, the near-complete pathway for cyclohexane oxidation in the Oceanospirillales single cells was elucidated and supported by both metagenome and metatranscriptome data. The draft genome also included genes for chemotaxis, motility and nutrient acquisition strategies that were also identified in the metagenomes and metatranscriptomes. These data point towards a rapid response of members of the Oceanospirillales to aliphatic hydrocarbons in the deep sea.


Assuntos
Hidrocarbonetos/metabolismo , Metagenoma , Oceanospirillaceae/genética , Oceanospirillaceae/metabolismo , Poluição por Petróleo , Água do Mar/microbiologia , Análise de Célula Única , Transcriptoma , Archaea/genética , Archaea/fisiologia , Bactérias/genética , Biodiversidade , Golfo do México , RNA Ribossômico 16S
5.
ISME J ; 6(2): 451-60, 2012 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-21814288

RESUMO

The Deepwater Horizon oil spill in the Gulf of Mexico is the deepest and largest offshore spill in the United State history and its impacts on marine ecosystems are largely unknown. Here, we showed that the microbial community functional composition and structure were dramatically altered in a deep-sea oil plume resulting from the spill. A variety of metabolic genes involved in both aerobic and anaerobic hydrocarbon degradation were highly enriched in the plume compared with outside the plume, indicating a great potential for intrinsic bioremediation or natural attenuation in the deep sea. Various other microbial functional genes that are relevant to carbon, nitrogen, phosphorus, sulfur and iron cycling, metal resistance and bacteriophage replication were also enriched in the plume. Together, these results suggest that the indigenous marine microbial communities could have a significant role in biodegradation of oil spills in deep-sea environments.


Assuntos
Biodiversidade , Genes Bacterianos/genética , Poluição por Petróleo , Petróleo/metabolismo , Biodegradação Ambiental , Carbono/metabolismo , Perfilação da Expressão Gênica , Golfo do México , Nitrogênio/metabolismo , Fósforo/metabolismo , Enxofre/metabolismo
6.
Science ; 330(6001): 204-8, 2010 Oct 08.
Artigo em Inglês | MEDLINE | ID: mdl-20736401

RESUMO

The biological effects and expected fate of the vast amount of oil in the Gulf of Mexico from the Deepwater Horizon blowout are unknown owing to the depth and magnitude of this event. Here, we report that the dispersed hydrocarbon plume stimulated deep-sea indigenous γ-Proteobacteria that are closely related to known petroleum degraders. Hydrocarbon-degrading genes coincided with the concentration of various oil contaminants. Changes in hydrocarbon composition with distance from the source and incubation experiments with environmental isolates demonstrated faster-than-expected hydrocarbon biodegradation rates at 5°C. Based on these results, the potential exists for intrinsic bioremediation of the oil plume in the deep-water column without substantial oxygen drawdown.


Assuntos
Biodegradação Ambiental , Poluição Ambiental , Gammaproteobacteria/metabolismo , Hidrocarbonetos/metabolismo , Oceanospirillaceae/metabolismo , Petróleo/metabolismo , Água do Mar/microbiologia , Biomassa , Contagem de Colônia Microbiana , Ácidos Graxos/análise , Gammaproteobacteria/classificação , Gammaproteobacteria/crescimento & desenvolvimento , Gammaproteobacteria/isolamento & purificação , Genes Bacterianos , Genes de RNAr , Dados de Sequência Molecular , Oceanospirillaceae/classificação , Oceanospirillaceae/genética , Oceanospirillaceae/isolamento & purificação , Fosfolipídeos/análise , Filogenia
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