Department of Biochemistry and Molecular Biology, Graduate School of Science and Engineering, Saitama University, 255 Shimo-Ohkubo, Saitama, Saitama 338-8570, Japan.
Microbiology (Reading). 2010 Jun;156(Pt 6):1650-1660. doi: 10.1099/mic.0.036749-0. Epub 2010 Feb 25.
Escherichia coli pgsA mutations, which cause acidic phospholipid deficiency, repress transcription of the flagellar master operon flhDC, and thus impair flagellar formation and motility. The molecular mechanism of the strong repression of flhDC transcription in the mutant cells, however, has not yet been clarified. In order to shed light on this mechanism we isolated genes which, when supplied in multicopy, suppress the repression of flhD, and found that three genes, gadW, metE and yeaB, were capable of suppression. Taking into account a previous report that gadW represses sigma(S) production, the level of sigma(S) in the pgsA3 mutant was examined. We found that pgsA3 cells had a high level of sigma(S) and that introduction of a gadW plasmid into pgsA3 cells did reduce the sigma(S) level. The pgsA3 cells exhibited a sharp increase in sigma(S) levels that can only be partially attributed to the slight increase in rpoS transcription; the largest part of the effect is due to a post-transcriptional accumulation of sigma(S). GadW in multicopy exerts its effect by post-transcriptionally downregulating sigma(S). YeaB and MetE in multicopy also exert their effect via sigma(S). Disruption of rpoS caused an increase of the flhD mRNA level, and induction from P(trc)-rpoS repressed the flhD mRNA level. The strong repression of flhD transcription in pgsA3 mutant cells is thus suggested to be caused by the accumulated sigma(S).
大肠杆菌 pgsA 突变导致酸性磷脂缺乏,抑制鞭毛主要操纵子 flhDC 的转录,从而损害鞭毛的形成和运动。然而,突变细胞中 flhDC 转录的强烈抑制的分子机制尚未阐明。为了阐明这一机制,我们分离了能够抑制 flhD 抑制的基因,并发现了三个基因,gadW、metE 和 yeaB,能够抑制。考虑到先前的报告表明 gadW 抑制 sigma(S)的产生,我们检查了 pgsA3 突变体中的 sigma(S)水平。我们发现 pgsA3 细胞具有高水平的 sigma(S),并且将 gadW 质粒引入 pgsA3 细胞确实降低了 sigma(S)水平。pgsA3 细胞表现出 sigma(S)水平的急剧增加,这只能部分归因于 rpoS 转录的轻微增加;大部分影响归因于 sigma(S)的转录后积累。多拷贝的 GadW 通过转录后下调 sigma(S)发挥作用。多拷贝的 yeaB 和 MetE 也通过 sigma(S)发挥作用。rpoS 的破坏导致 flhD mRNA 水平增加,而从 P(trc)-rpoS 的诱导则抑制了 flhD mRNA 水平。因此,推测 pgsA3 突变细胞中 flhD 转录的强烈抑制是由积累的 sigma(S)引起的。