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Bioprospecting of Extremophilic Microorganisms to Address Environmental Pollution
Published on: December 30, 2021
Genome-based characterization of a halotolerant strain, Planococcus antioxidans PAB314, with potential for PAH
Mobina Bayatian1, Ahmad Ali Pourbabaee2, Mohammad Ali Amoozegar3
1Extremophiles Laboratory, Department of Microbiology, School of Biology and Center of Excellence in Phylogeny of Living Organisms, College of Science, University of Tehran, Tehran, Iran.
Abstract:
To investigate the intrinsic potential of oil-contaminated saline soils for degrading aromatic hydrocarbons, a halotolerant bacterial strain identified as Planococcus antioxidans PAB314 was isolated and characterized for its hydrocarbon-degrading ability. The genome of P. antioxidans PAB314 was sequenced using next-generation techniques, uncovering a 3,705,003 bp genome with 3,263 coding DNA sequences. Gene ontology analysis identified 2,423 genes, highlighting predominant functions in amino acid transport, metabolism, and general cellular processes. GC-MS analysis of naphthalene degradation revealed salicylate and catechol as breakdown products, consistent with established bacterial degradation pathways. Anthracene degradation produced 3-hydroxy-2-naphthoic acid, 6,7-benzocoumarin, and cis-4-(2-hydroxy-3-naphthyl)-2-oxobut-3-enoate, consistent with documented pathways. Pyrene degradation yielded phenanthrene-4,5-dicarboxylate, phenanthrene-4-carboxylate, 1-hydroxy-2-naphthoic acid, and phthalate, suggesting an initial dioxygenation or monooxygenation at the C-4 and C-5 positions to form hydroxylated intermediates, followed by ring cleavage and decarboxylation. Catabolic genes like alcohol dehydrogenase, ring-cleaving dioxygenase, catechol-2,3-dioxygenase, and aldehyde dehydrogenase were found within the genome, indicating P. antioxidans PAB314's genetic capability to degrade polycyclic aromatic hydrocarbons. This study introduces Planococcus antioxidans PAB314 as a novel halotolerant strain capable of efficiently utilizing and degrading aromatic hydrocarbons with diverse ring structures under high-salinity conditions, providing genomic and biochemical evidence of its degradation potential and underscoring its ecological significance and applicability in the bioremediation of hydrocarbon-contaminated saline environments.
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