Toluene degradation via a unique metabolic route in indigenous bacterial species.
Bacillus paralicheniformis
Bioremediation
Brevibacillus agri
Burkholderia lata
Consortium
Toluene-degrading bacteria
Journal
Archives of microbiology
ISSN: 1432-072X
Titre abrégé: Arch Microbiol
Pays: Germany
ID NLM: 0410427
Informations de publication
Date de publication:
Dec 2019
Dec 2019
Historique:
received:
03
06
2019
accepted:
10
07
2019
revised:
27
06
2019
pubmed:
25
7
2019
medline:
16
11
2019
entrez:
24
7
2019
Statut:
ppublish
Résumé
Tanneries are the primary source of toluene pollution in the environment and toluene due to its hazardous effects has been categorized as persistent organic pollutant. Present study was initiated to trace out metabolic fingerprints of three toluene-degrading bacteria isolated from tannery effluents of Southern Punjab. Using selective enrichment and serial dilution methods followed by biochemical, molecular and antibiotic resistance analysis, isolated bacteria were subjected to metabolomics analysis. GC-MS/LC-MS analysis of bacterial metabolites helped to identify toluene transformation products and underlying pathways. Three toluene-metabolizing bacteria identified as Bacillus paralicheniformis strain KJ-16 (IUBT4 and IUBT24) and Brevibacillus agri strain NBRC 15538 (IUBT19) were found tolerant to toluene and capable of degrading toluene. Toluene-degrading potential of these isolates was detected to be IUBT4 (10.35 ± 0.084 mg/h), IUBT19 (14.07 ± 3.14 mg/h) and IUBT24 (11.1 ± 0.282 mg/h). Results of GC-MS analysis revealed that biotransformation of toluene is accomplished not only through known metabolic routes such as toluene 3-monooxygenase (T3MO), toluene 2-monooxygenase (T2MO), toluene 4-monooxygenase (T4MO), toluene methyl monooxygenase (TOL), toluene dioxygenase (Tod), meta- and ortho-ring fission pathways. But additionally, confirmed existence of a unique metabolic pathway that involved conversion of toluene into intermediates such as cyclohexene, cyclohexane, cyclohexanone and cyclohexanol. LC-MS analysis indicated the presence of fatty acid amides, stigmine, emmotin A and 2, 2-dinitropropanol in supernatants of bacterial cultures. As the isolated bacteria transformed toluene into relatively less toxic molecules and thus can be preferably exploited for the eco-friendly remediation of toluene.
Identifiants
pubmed: 31332474
doi: 10.1007/s00203-019-01705-0
pii: 10.1007/s00203-019-01705-0
doi:
Substances chimiques
Toluene
3FPU23BG52
Mixed Function Oxygenases
EC 1.-
Oxygenases
EC 1.13.-
toluene ortho-monooxygenase
EC 1.13.12.-
toluene dioxygenase
EC 1.14.12.11
toluene-3-monooxygenase
EC 1.14.13.-
toluene-4-monooxygenase
EC 1.14.13.-
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM