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首页> 外文期刊>Journal of Basic Microbiology: An International Journal on Morphology, Physiology, Genetics, and Ecology of Microorganisms >phz1 phz1 contributes much more to phenazine‐1‐carboxylic acid biosynthesis than phz2 phz2 in Pseudomonas aeruginosa rpoS Pseudomonas aeruginosa rpoS mutant
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phz1 phz1 contributes much more to phenazine‐1‐carboxylic acid biosynthesis than phz2 phz2 in Pseudomonas aeruginosa rpoS Pseudomonas aeruginosa rpoS mutant

机译:PHZ1 PHZ1对Phz2 PHZ2在假单胞菌Aeruginosa Rpos假单胞菌铜绿假单胞菌RPO突变体中促成pHz2 phz2的苯吡啶-1-羧酸生物合成促进更多

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Abstract Pseudomonas aeruginosa PAO1, a common opportunistic bacterial pathogen, contains two phenazine‐biosynthetic operons, phz1 ( phzA 1 B 1 C 1 D 1 E 1 F 1 G 1 ) and phz2 ( phzA 2 B 2 C 2 D 2 E 2 F 2 G 2 ). Each of two operons can independently encode a set of enzymes involving in the biosynthesis of phenazine‐1‐carboxylic acid. As a global transcriptional regulator, RpoS mediates a lot of genes involving secondary metabolites biosynthesis in many bacteria. In an other previous study, it was reported that RpoS deficiency caused overproduction of pyocyanin, a derivative of phenazine‐1‐carboxylic acid in P. aeruginosa PAO1. But it is not known how RpoS mediates the expression of each of two phz operons and modulates phenazine‐1‐carboxylic acid biosynthesis in detail. In this study, by deleting the rpoS gene in the mutant PNΔ phz1 and the mutant PNΔ phz2 , we found that the phz1 operon contributes much more to phenazine‐1‐carboxylic acid biosynthesis than the phz2 operon in the absence of RpoS. With the construction of the translational and transcriptional fusion vectors with the truncated lacZ reporter gene, we demonstrated that RpoS negatively regulates the expression of phz1 and positively controls the expression of phz2 , and the regulation of phenazine‐1‐carboxylic acid biosynthesis mediated by RopS occurs at the posttranscriptional level, not at the transcriptional level. Obviously, two copies of phz operons and their differential expression mediated by RpoS might help P. aeruginosa adapt to its diverse environments and establish infection in its hosts.
机译:摘要普通机会铜绿假单胞菌PAO1含有两种吩嗪 - 生物合成型手术,PHZ1(PHZA 1 B 1 C 1 D 1 E 1 F 1 G 1)和PHZ2(PHZA 2 B 2 C 2 D 2 E 2 F 2 G 2)。两个操纵子中的每一个可以独立地编码一组涉及苯吡啶-1-羧酸的生物合成的酶。作为全球转录调节剂,RPO介导许多涉及许多细菌中的次生代谢物生物合成的基因。在另一项研究中,据报道,RPOS缺乏造成的碧粘蛋白过量生产,P.铜绿假单胞菌Pao1中苯吡啶-1-羧酸的衍生物。但是,尚不知道RPO如何介导两个PHZ操纵子的表达并详细调节苯嗪-1-羧酸生物合成。在本研究中,通过在突变体PNδPHZ1和突变PNδPHZ2中删除RPOS基因,我们发现PHZ1操纵子在不存在RPO的情况下比PHZ2操纵子促成比PHZ2操纵子更大的脂肪素-1-羧酸生物合成。随着截断的Lacz报告基因的平移和转录融合载体的构建,我们证明RPO负调节PHZ1的表达,并积极控制PHZ2的表达,并且由ROPS介导的苯吡啶-1-羧酸生物合成的调节发生在后术语水平,而不是转录层面。显然,两份PHZ操纵子和RPO介导的差异表达可能有助于P.铜绿假单胞菌适应其各种环境,并在其宿主中建立感染。

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