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首页> 外文期刊>BMC Microbiology >Class IIa bacteriocin resistance in Enterococcus faecalis V583: The mannose PTS operon mediates global transcriptional responses
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Class IIa bacteriocin resistance in Enterococcus faecalis V583: The mannose PTS operon mediates global transcriptional responses

机译:粪肠球菌V583中的IIa类细菌素抗性:甘露糖PTS操纵子介导整体转录反应

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Background The class IIa bacteriocin, pediocin PA-1, has clear potential as food preservative and in the medical field to be used against Gram negative pathogen species as Enterococcus faecalis and Listeria monocytogenes. Resistance towards class IIa bacteriocins appear in laboratory and characterization of these phenotypes is important for their application. To gain insight into bacteriocin resistance we studied mutants of E. faecalis V583 resistant to pediocin PA-1 by use of transcriptomic analyses. Results Mutants of E. faecalis V583 resistant to pediocin PA-1 were isolated, and their gene expression profiles were analyzed and compared to the wild type using whole-genome microarray. Significantly altered transcription was detected from about 200 genes; most of them encoding proteins involved in energy metabolism and transport. Glycolytic genes were down-regulated in the mutants, but most of the genes showing differential expression were up-regulated. The data indicate that the mutants were relieved from glucose repression and putative catabolic responsive elements (cre) could be identified in the upstream regions of 70% of the differentially expressed genes. Bacteriocin resistance was caused by reduced expression of the mpt operon encoding the mannose-specific phosphoenolpyruvate:carbohydrate phosphotransferase system (PTS), and the same transcriptional changes were seen in a mptD-inactivated mutant. This mutant also had decreased transcription of the whole mpt operon, showing that the PTS is involved in its own transcriptional regulation. Conclusion Our data confirm the important role of mannose PTS in class IIa bacteriocin sensitivity and we demonstrate its importance involving global carbon catabolite control.
机译:背景技术IIa类细菌素,pediocin PA-1,具有很强的食品防腐剂潜力,在医学领域可用于对抗革兰氏阴性病原菌,如粪肠球菌和单核细胞增生李斯特菌。对IIa类细菌素的抗药性出现在实验室中,这些表型的表征对其应用很重要。为了深入了解细菌素抗性,我们使用转录组分析方法研究了粪便大肠杆菌V583对pediocin PA-1的抗性突变体。结果分离出了对pediocin PA-1具有抗性的粪肠球菌V583突变体,并利用全基因组芯片分析了它们的基因表达谱并与野生型进行了比较。从大约200个基因中检测到转录明显改变;它们大多数编码参与能量代谢和运输的蛋白质。糖酵解基因在突变体中被下调,但是大多数显示差异表达的基因被上调。数据表明该突变体摆脱了葡萄糖抑制,并且在70%的差异表达基因的上游区域可以鉴定出假定的分解代谢反应元件(cre)。细菌素耐药性是由于编码甘露糖特异性磷酸烯醇丙酮酸:碳水化合物磷酸转移酶系统(PTS)的mpt操纵子表达降低所致,并且在mptD灭活的突变体中观察到相同的转录变化。该突变体也降低了整个mpt操纵子的转录,表明PTS参与了其自身的转录调控。结论我们的数据证实了甘露糖PTS在IIa类细菌素敏感性中的重要作用,并且证明了其涉及全球碳分解代谢物控制的重要性。

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