Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil

Heavy metal contamination is accidentally becoming prevalent in Antarctica, one of the world’s most pristine regions. Anthropogenic as well as natural causes can result in heavy metal contamination. Each heavy metal has a different toxic effect on various microorganisms and species, which can interf...

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Published in:Sustainability (Switzerland)
Main Author: Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
Format: Article
Language:English
Published: MDPI 2021
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85116054235&doi=10.3390%2fsu131910749&partnerID=40&md5=c77c898c604f21f4ae6349b6ed48cc9e
id 2-s2.0-85116054235
spelling 2-s2.0-85116054235
Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
2021
Sustainability (Switzerland)
13
19
10.3390/su131910749
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85116054235&doi=10.3390%2fsu131910749&partnerID=40&md5=c77c898c604f21f4ae6349b6ed48cc9e
Heavy metal contamination is accidentally becoming prevalent in Antarctica, one of the world’s most pristine regions. Anthropogenic as well as natural causes can result in heavy metal contamination. Each heavy metal has a different toxic effect on various microorganisms and species, which can interfere with other pollutant bioremediation processes. This study focused on the effect of co-contaminant heavy metals on waste canola oil (WCO) biodegradation by the BS14 bacterial community collected from Antarctic soil. The toxicity of different heavy metals in 1 ppm of concentration to the WCO-degrading bacteria was evaluated and further analyzed using half maximal inhibition concentration (IC50 ) and effective concentration (EC50 ) tests. The results obtained indicated that Ag and Hg significantly impeded bacterial growth and degradation of WCO, while interestingly, Cr, As, and Pb had the opposite effect. Meanwhile, Cd, Al, Zn, Ni, Co, and Cu only slightly inhibited the bacterial community in WCO biodegradation. The IC50 values of Ag and Hg for WCO degradation were found to be 0.47 and 0.54 ppm, respectively. Meanwhile, Cr, As, and Pb were well-tolerated and induced bacterial growth and WCO degradation, resulting in the EC50 values of 3.00, 23.80, and 28.98 ppm, respectively. The ability of the BS14 community to tolerate heavy metals while biodegrading WCO in low-temperature conditions was successfully confirmed, which is a crucial aspect in biodegrading oil due to the co-contamination of oil and heavy metals that can occur simultaneously, and at the same time it can be applied in heavy metal-contaminated areas. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
MDPI
20711050
English
Article
All Open Access; Gold Open Access
author Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
spellingShingle Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
author_facet Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
author_sort Zahri K.N.M.; Gomez-Fuentes C.; Sabri S.; Zulkharnain A.; Khalil K.A.; Lim S.; Ahmad S.A.
title Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
title_short Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
title_full Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
title_fullStr Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
title_full_unstemmed Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
title_sort Evaluation of heavy metal tolerance level of the antarctic bacterial community in biodegradation of waste canola oil
publishDate 2021
container_title Sustainability (Switzerland)
container_volume 13
container_issue 19
doi_str_mv 10.3390/su131910749
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85116054235&doi=10.3390%2fsu131910749&partnerID=40&md5=c77c898c604f21f4ae6349b6ed48cc9e
description Heavy metal contamination is accidentally becoming prevalent in Antarctica, one of the world’s most pristine regions. Anthropogenic as well as natural causes can result in heavy metal contamination. Each heavy metal has a different toxic effect on various microorganisms and species, which can interfere with other pollutant bioremediation processes. This study focused on the effect of co-contaminant heavy metals on waste canola oil (WCO) biodegradation by the BS14 bacterial community collected from Antarctic soil. The toxicity of different heavy metals in 1 ppm of concentration to the WCO-degrading bacteria was evaluated and further analyzed using half maximal inhibition concentration (IC50 ) and effective concentration (EC50 ) tests. The results obtained indicated that Ag and Hg significantly impeded bacterial growth and degradation of WCO, while interestingly, Cr, As, and Pb had the opposite effect. Meanwhile, Cd, Al, Zn, Ni, Co, and Cu only slightly inhibited the bacterial community in WCO biodegradation. The IC50 values of Ag and Hg for WCO degradation were found to be 0.47 and 0.54 ppm, respectively. Meanwhile, Cr, As, and Pb were well-tolerated and induced bacterial growth and WCO degradation, resulting in the EC50 values of 3.00, 23.80, and 28.98 ppm, respectively. The ability of the BS14 community to tolerate heavy metals while biodegrading WCO in low-temperature conditions was successfully confirmed, which is a crucial aspect in biodegrading oil due to the co-contamination of oil and heavy metals that can occur simultaneously, and at the same time it can be applied in heavy metal-contaminated areas. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
publisher MDPI
issn 20711050
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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