Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses

Petroleum hydrocarbons represent the most frequent environmental contaminant. The introduction of petroleum hydrocarbons into a pristine environment immediately changes the nature of that environment, resulting in reduced ecosystem functionality. Natural attenuation represents the single, most impor...

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Main Authors: Adam Truskewycz, Taylor D. Gundry, Leadin S. Khudur, Adam Kolobaric, Mohamed Taha, Arturo Aburto-Medina, Andrew S. Ball, Esmaeil Shahsavari
Format: Article
Language:English
Published: MDPI AG 2019-09-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/24/18/3400
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spelling doaj-5e5db5ef24ae4403827fc5ec71abf7452020-11-25T01:36:58ZengMDPI AGMolecules1420-30492019-09-012418340010.3390/molecules24183400molecules24183400Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial ResponsesAdam Truskewycz0Taylor D. Gundry1Leadin S. Khudur2Adam Kolobaric3Mohamed Taha4Arturo Aburto-Medina5Andrew S. Ball6Esmaeil Shahsavari7Centre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaCentre for Environmental Sustainability and Remediation, School of Science, RMIT University, Bundoora, VIC 3083, AustraliaPetroleum hydrocarbons represent the most frequent environmental contaminant. The introduction of petroleum hydrocarbons into a pristine environment immediately changes the nature of that environment, resulting in reduced ecosystem functionality. Natural attenuation represents the single, most important biological process which removes petroleum hydrocarbons from the environment. It is a process where microorganisms present at the site degrade the organic contaminants without the input of external bioremediation enhancers (i.e., electron donors, electron acceptors, other microorganisms or nutrients). So successful is this natural attenuation process that in environmental biotechnology, bioremediation has developed steadily over the past 50 years based on this natural biodegradation process. Bioremediation is recognized as the most environmentally friendly remediation approach for the removal of petroleum hydrocarbons from an environment as it does not require intensive chemical, mechanical, and costly interventions. However, it is under-utilized as a commercial remediation strategy due to incomplete hydrocarbon catabolism and lengthy remediation times when compared with rival technologies. This review aims to describe the fate of petroleum hydrocarbons in the environment and discuss their interactions with abiotic and biotic components of the environment under both aerobic and anaerobic conditions. Furthermore, the mechanisms for dealing with petroleum hydrocarbon contamination in the environment will be examined. When petroleum hydrocarbons contaminate land, they start to interact with its surrounding, including physical (dispersion), physiochemical (evaporation, dissolution, sorption), chemical (photo-oxidation, auto-oxidation), and biological (plant and microbial catabolism of hydrocarbons) interactions. As microorganism (including bacteria and fungi) play an important role in the degradation of petroleum hydrocarbons, investigations into the microbial communities within contaminated soils is essential for any bioremediation project. This review highlights the fate of petroleum hydrocarbons in tertial environments, as well as the contributions of different microbial consortia for optimum petroleum hydrocarbon bioremediation potential. The impact of high-throughput metagenomic sequencing in determining the underlying degradation mechanisms is also discussed. This knowledge will aid the development of more efficient, cost-effective commercial bioremediation technologies.https://www.mdpi.com/1420-3049/24/18/3400petroleum hydrocarbon (PH)natural attenuationbioremediationmicrobial consortia
collection DOAJ
language English
format Article
sources DOAJ
author Adam Truskewycz
Taylor D. Gundry
Leadin S. Khudur
Adam Kolobaric
Mohamed Taha
Arturo Aburto-Medina
Andrew S. Ball
Esmaeil Shahsavari
spellingShingle Adam Truskewycz
Taylor D. Gundry
Leadin S. Khudur
Adam Kolobaric
Mohamed Taha
Arturo Aburto-Medina
Andrew S. Ball
Esmaeil Shahsavari
Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
Molecules
petroleum hydrocarbon (PH)
natural attenuation
bioremediation
microbial consortia
author_facet Adam Truskewycz
Taylor D. Gundry
Leadin S. Khudur
Adam Kolobaric
Mohamed Taha
Arturo Aburto-Medina
Andrew S. Ball
Esmaeil Shahsavari
author_sort Adam Truskewycz
title Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
title_short Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
title_full Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
title_fullStr Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
title_full_unstemmed Petroleum Hydrocarbon Contamination in Terrestrial Ecosystems—Fate and Microbial Responses
title_sort petroleum hydrocarbon contamination in terrestrial ecosystems—fate and microbial responses
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2019-09-01
description Petroleum hydrocarbons represent the most frequent environmental contaminant. The introduction of petroleum hydrocarbons into a pristine environment immediately changes the nature of that environment, resulting in reduced ecosystem functionality. Natural attenuation represents the single, most important biological process which removes petroleum hydrocarbons from the environment. It is a process where microorganisms present at the site degrade the organic contaminants without the input of external bioremediation enhancers (i.e., electron donors, electron acceptors, other microorganisms or nutrients). So successful is this natural attenuation process that in environmental biotechnology, bioremediation has developed steadily over the past 50 years based on this natural biodegradation process. Bioremediation is recognized as the most environmentally friendly remediation approach for the removal of petroleum hydrocarbons from an environment as it does not require intensive chemical, mechanical, and costly interventions. However, it is under-utilized as a commercial remediation strategy due to incomplete hydrocarbon catabolism and lengthy remediation times when compared with rival technologies. This review aims to describe the fate of petroleum hydrocarbons in the environment and discuss their interactions with abiotic and biotic components of the environment under both aerobic and anaerobic conditions. Furthermore, the mechanisms for dealing with petroleum hydrocarbon contamination in the environment will be examined. When petroleum hydrocarbons contaminate land, they start to interact with its surrounding, including physical (dispersion), physiochemical (evaporation, dissolution, sorption), chemical (photo-oxidation, auto-oxidation), and biological (plant and microbial catabolism of hydrocarbons) interactions. As microorganism (including bacteria and fungi) play an important role in the degradation of petroleum hydrocarbons, investigations into the microbial communities within contaminated soils is essential for any bioremediation project. This review highlights the fate of petroleum hydrocarbons in tertial environments, as well as the contributions of different microbial consortia for optimum petroleum hydrocarbon bioremediation potential. The impact of high-throughput metagenomic sequencing in determining the underlying degradation mechanisms is also discussed. This knowledge will aid the development of more efficient, cost-effective commercial bioremediation technologies.
topic petroleum hydrocarbon (PH)
natural attenuation
bioremediation
microbial consortia
url https://www.mdpi.com/1420-3049/24/18/3400
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