Growth of Rhodococcus sp. strain BCP1 on gaseous n-alkanes: new metabolic insights and transcriptional analysis of two soluble di-iron monooxygenase genes

Рост штамма Rhodococcus sp. BCP1 на газообразных n-алканах: новые сведения о метаболизме и транскрипционный анализ генов двух растворимых дижелезных монооксигеназ
Martina Cappelletti, Alessandro Presentato, Giorgio Milazzo, Raymond J. Turner, Stefano Fedi, Dario Frascari, Davide Zannoni
2015-05-12

RT-qPCR transcriptional analysisRhodococcus sp. strain BCP1gaseous n-alkanesn-butane terminal oxidation (1-butanol)primer extension transcriptional start sitesprmABCDpropane terminal and sub-terminal oxidation (1- and 2-propanol)proteomic analysis (differential protein expression)smoABCDsoluble di-iron monooxygenases (SDIMOs)
Rhodococcus sp. strain BCP1 was initially isolated for its ability to grow on gaseous n-alkanes, which act as inducers for the co-metabolic degradation of low-chlorinated compounds. Here, both molecular and metabolic features of BCP1 cells grown on gaseous and short-chain n-alkanes (up to n-heptane) were examined in detail. We show that propane metabolism generated terminal and sub-terminal oxidation products such as 1- and 2-propanol, whereas 1-butanol was the only terminal oxidation product detected from n-butane metabolism. Two gene clusters, prmABCD and smoABCD-coding for Soluble Di-Iron Monooxgenases (SDIMOs) involved in gaseous n-alkanes oxidation-were detected in the BCP1 genome. By means of Reverse Transcriptase-quantitative PCR (RT-qPCR) analysis, a set of substrates inducing the expression of the sdimo genes in BCP1 were assessed as well as their transcriptional repression in the presence of sugars, organic acids, or during the cell growth on rich medium (Luria-Bertani broth). The transcriptional start sites of both the sdimo gene clusters were identified by means of primer extension experiments. Finally, proteomic studies revealed changes in the protein pattern induced by growth on gaseous- (n-butane) and/or liquid (n-hexane) short-chain n-alkanes as compared to growth on succinate. Among the differently expressed protein spots, two chaperonins and an isocytrate lyase were identified along with oxidoreductases involved in oxidation reactions downstream of the initial monooxygenase reaction step.
1
Primer extension experiments identified the transcriptional start sites for both sdimo gene clusters.
2
Propane metabolism in Rhodococcus sp. BCP1 produces both terminal and sub-terminal oxidation products, specifically 1-propanol and 2-propanol.
3
Proteomic comparison of cells grown on n-butane or n-hexane versus succinate revealed differential expression, including two chaperonins, isocitrate lyase, and oxidoreductases linked to downstream oxidation reactions.
4
RT-qPCR showed specific substrates induce sdimo gene expression, while sugars, organic acids, or rich medium repress their transcription.
5
Two SDIMO gene clusters (prmABCD and smoABCD) involved in gaseous n-alkane oxidation were identified in the BCP1 genome.
6
n-Butane metabolism in BCP1 yields 1-butanol as the only detected terminal oxidation product.

Rhodococcus sp. strain BCP1 growing on gaseous and short-chain n-alkanes

Metabolic pathways and transcriptional regulation of gaseous n-alkane oxidation, including characterization of oxidation products, expression and promoter mapping of two SDIMO (prmABCD and smoABCD) gene clusters, and associated proteomic changes

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2015-05-12
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Martina Cappelletti
Alessandro Presentato
Giorgio Milazzo
Raymond J. Turner
Stefano Fedi
Dario Frascari
Davide Zannoni
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