Proteomic and transcriptomic analyses reveal genes upregulated by cis-Dichloroethene in Polaromonas sp. strain JS666

dc.contributor.authorJennings, Laura K.
dc.contributor.authorChartrand, Michelle M.
dc.contributor.authorLacrampe-Couloume, Georges
dc.contributor.authorLollar, Barbara S.
dc.contributor.authorSpain, Jim C.
dc.contributor.authorGossett, James M.
dc.date.accessioned2017-07-12T19:35:56Z
dc.date.available2017-07-12T19:35:56Z
dc.date.issued2009-04
dc.description.abstractPolaromonas sp. strain JS666 is the only bacterial isolate capable of using cis-dichloroethene (cDCE) as a sole carbon and energy source. Studies of cDCE degradation in this novel organism are of interest because of potential bioremediation and biocatalysis applications. The primary cellular responses of JS666 to growth on cDCE were explored using proteomics and transcriptomics to identify the genes upregulated by cDCE. Two-dimensional gel electrophoresis revealed upregulation of genes annotated as encoding glutathione S-transferase, cyclohexanone monooxygenase, and haloacid dehalogenase. DNA microarray experiments confirmed the proteomics findings that the genes indicated above were among the most highly upregulated by cDCE. The upregulation of genes with antioxidant functions and the inhibition of cDCE degradation by elevated oxygen levels suggest that cDCE induces an oxidative stress response. Furthermore, the upregulation of a predicted ABC transporter and two sodium/solute symporters suggests that transport is important in cDCE degradation. The omics data were integrated with data from compound-specific isotope analysis (CSIA) and biochemical experiments to develop a hypothesis for cDCE degradation pathways in JS666. The CSIA results indicate that the measured isotope enrichment factors for aerobic cDCE degradation ranged from –17.4 to –22.4‰ . Evidence suggests that cDCE degradation via monooxygenase-catalyzed epoxidation (C=C cleavage) may be only a minor degradation pathway under the conditions of these experiments and that the major degradation pathway involves carbon-chloride cleavage as the initial step, a novel mechanism. The results provide a significant step toward elucidation of cDCE degradation pathways and enhanced understanding of cDCE degradation in JS666.en_US
dc.identifier.citationJennings LK, Chartrand MMG, Lacrampe-Couloume G, Lollar BS, Spain JC, Gossett JM, "Proteomic and transcriptomic analyses reveal genes upregulated by cis-Dichloroethene in Polaromonas sp. strain JS666," Applied and Environmental Microbiology, 2009 75(11):3733-3744en_US
dc.identifier.issn0099-2240
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/13241
dc.titleProteomic and transcriptomic analyses reveal genes upregulated by cis-Dichloroethene in Polaromonas sp. strain JS666en_US
dc.typeArticleen_US
mus.citation.extentfirstpage3733en_US
mus.citation.extentlastpage3744en_US
mus.citation.issue11en_US
mus.citation.journaltitleApplied and Environmental Microbiologyen_US
mus.citation.volume75en_US
mus.data.thumbpage8en_US
mus.identifier.categoryEngineering & Computer Scienceen_US
mus.identifier.doi10.1128/aem.00031-09en_US
mus.relation.collegeCollege of Engineeringen_US
mus.relation.departmentCenter for Biofilm Engineering.en_US
mus.relation.departmentChemical & Biological Engineering.en_US
mus.relation.departmentChemical Engineering.en_US
mus.relation.researchgroupCenter for Biofilm Engineering.en_US
mus.relation.universityMontana State University - Bozemanen_US

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