A comparative intracellular proteomic profiling of Pseudomonas aeruginosa strain ASP-53 grown on pyrene or glucose as sole source of carbon and identification of some key enzymes of pyrene biodegradation pathway

Mukherjee, Ashis K. ; Bhagowati, Pabitra ; Biswa, Bhim Bahadur ; Chanda, Abhishek ; Kalita, Bhargab (2017) A comparative intracellular proteomic profiling of Pseudomonas aeruginosa strain ASP-53 grown on pyrene or glucose as sole source of carbon and identification of some key enzymes of pyrene biodegradation pathway Journal of Proteomics, 167 . pp. 25-35. ISSN 18743919

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Official URL: http://doi.org/10.1016/j.jprot.2017.07.020

Related URL: http://dx.doi.org/10.1016/j.jprot.2017.07.020

Abstract

Pseudomonas aeruginosa strain ASP-53, isolated from a petroleum oil-contaminated soil sample, was found to be an efficient degrader of pyrene. PCR amplification of selected hydrocarbon catabolic genes (alkB gene, which encodes for monooxygenase, and the C12O, C23O, and PAH-RHDα genes encoding for the dioxygenase enzyme) from the genomic DNA of P. aeruginosa strain ASP-53 suggested its hydrocarbon degradation potential. The GC-MS analysis demonstrated 30.1% pyrene degradation by P. aeruginosa strain ASP-53 after 144h of incubation at pH6.5, 37°C. Expressions of 115 and 196 intracellular proteins were unambiguously identified and quantitated by shotgun proteomics analysis when the isolate was grown in medium containing pyrene and glucose, respectively. The pyrene-induced uniquely expressed and up-regulated proteins in P. aeruginosa strain ASP-53 in addition to substrate (pyrene) metabolism are also likely to be associated with different cellular functions for example-related to protein folding (molecular chaperone), stress response, metabolism of carbohydrate, proteins and amino acids, and fatty acids; transport of metabolites, energy generation such as ATP synthesis, electron transport and nitrate assimilation, and other oxidation-reduction reactions. Proteomic analyses identified some important enzymes involved in pyrene degradation by P. aeruginosa ASP-53 which shows that this bacterium follows the salicylate pathway of pyrene degradation.

Item Type:Article
Source:Copyright of this article belongs to Elsevier B.V.
Keywords:ESI-LC-MS/MS; PAH biodegradation; Pseudomonas aeruginosa; Pyrene; Shotgun proteomics
ID Code:126800
Deposited On:13 Oct 2022 06:56
Last Modified:13 Oct 2022 06:56

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