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由于酸性磷脂缺陷型大肠杆菌细胞中 sigmaS 的合成增加和降解减少而导致的 sigmaS 积累。

Accumulation of sigmaS due to enhanced synthesis and decreased degradation in acidic phospholipid-deficient Escherichia coli cells.

机构信息

Department of Biochemistry and Molecular Biology, Graduate School of Science and Engineering, Saitama University, Saitama, Japan.

出版信息

FEMS Microbiol Lett. 2010 Jun;307(2):120-7. doi: 10.1111/j.1574-6968.2010.01964.x. Epub 2010 Mar 23.

Abstract

The Escherichia coli pgsA3 mutation, which causes deficiency in acidic phospholipids, leads to a significant accumulation of sigma(S). This accumulation is partly accounted for by the higher transcription level of rpoS; however, it has also been suggested that the cells accumulate sigma(S) post-transcriptionally. We found that the level of the small regulatory RNA RprA, which is involved in the promotion of rpoS translation, is higher in pgsA3 cells than in pgsA(+) cells. Induction of altered rpoS mRNA that does not depend on RprA in pgsA(+) cells did not increase the level of sigma(S) to the high level observed in pgsA3 cells, suggesting post-translational sigma(S) accumulation in the latter. The mRNA levels of clpX and clpP, whose products form a ClpXP protease that degrades sigma(S), were much reduced in pgsA3 cells. Consistent with the reduced mRNA levels, the half-life of sigma(S) in pgsA3 cells was much longer than in pgsA(+) cells, indicating that downregulation of the degradation is a major cause for the high sigma(S) content. We show that the downregulation can be partially attributed to activated CpxAR in the mutant cells, which causes repression of rpoE on whose gene product the expression of clpPX depends.

摘要

大肠杆菌 pgsA3 突变导致酸性磷脂缺乏,从而导致 sigma(S) 的大量积累。这种积累部分归因于 rpoS 的转录水平升高;然而,也有人认为细胞在后转录水平积累 sigma(S)。我们发现,参与 rpoS 翻译促进的小调控 RNA RprA 的水平在 pgsA3 细胞中高于 pgsA(+)细胞。在 pgsA(+)细胞中,诱导不依赖于 RprA 的改变的 rpoS mRNA 不会将 sigma(S)的水平提高到在 pgsA3 细胞中观察到的高水平,表明在后一种细胞中存在 sigma(S)的翻译后积累。其产物形成降解 sigma(S)的 ClpXP 蛋白酶的 clpX 和 clpP 的 mRNA 水平在 pgsA3 细胞中大大降低。与 mRNA 水平降低一致,pgsA3 细胞中 sigma(S)的半衰期比 pgsA(+)细胞长得多,表明降解的下调是 sigma(S)含量高的主要原因。我们表明,下调可以部分归因于突变细胞中激活的 CpxAR,它导致依赖其基因产物的 clpPX 表达的 rpoE 受到抑制。

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