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Ms1 RNA 增加了耻垢分枝杆菌中的 RNA 聚合酶的数量。

Ms1 RNA increases the amount of RNA polymerase in Mycobacterium smegmatis.

机构信息

Laboratory of Microbial Genetics and Gene Expression, Institute of Microbiology, Czech Academy of Sciences, Prague, Czech Republic.

Faculty of Science, Department of Genetics and Microbiology, Charles University, Prague, Czech Republic.

出版信息

Mol Microbiol. 2019 Feb;111(2):354-372. doi: 10.1111/mmi.14159. Epub 2018 Dec 11.

Abstract

Ms1 is a sRNA recently found in mycobacteria and several other actinobacterial species. Ms1 interacts with the RNA polymerase (RNAP) core devoid of sigma factors, which differs from 6S RNA that binds to RNAP holoenzymes containing the primary sigma factor. Here we show that Ms1 is the most abundant non-rRNA transcript in stationary phase in Mycobacterium smegmatis. The accumulation of Ms1 stems from its high-level synthesis combined with decreased degradation. We identify the Ms1 promoter, P , and cis-acting elements important for its activity. Furthermore, we demonstrate that PNPase (an RNase) contributes to the differential accumulation of Ms1 during growth. Then, by comparing the transcriptomes of wt and ΔMs1 strains from stationary phase, we reveal that Ms1 affects the intracellular level of RNAP. The absence of Ms1 results in decreased levels of the mRNAs encoding β and β' subunits of RNAP, which is also reflected at the protein level. Thus, the ΔMs1 strain has a smaller pool of RNAPs available when the transcriptional demand increases. This contributes to the inability of the ΔMs1 strain to rapidly react to environmental changes during outgrowth from stationary phase.

摘要

Ms1 是一种最近在分枝杆菌和其他几种放线菌中发现的 sRNA。Ms1 与缺乏 sigma 因子的 RNA 聚合酶 (RNAP) 核心相互作用,这与结合含有主要 sigma 因子的全酶 RNAP 的 6S RNA 不同。在这里,我们表明 Ms1 是分枝杆菌在静止期丰度最高的非 rRNA 转录本。Ms1 的积累源于其高水平的合成与降解减少。我们鉴定了 Ms1 的启动子 P 和对其活性重要的顺式作用元件。此外,我们证明 PNPase(一种 RNase)有助于 Ms1 在生长过程中的差异积累。然后,通过比较静止期 wt 和 ΔMs1 菌株的转录组,我们揭示了 Ms1 影响 RNAP 的细胞内水平。缺少 Ms1 导致编码 RNAP 的 β 和 β'亚基的 mRNA 水平降低,这在蛋白质水平上也得到了反映。因此,当转录需求增加时,ΔMs1 菌株可利用的 RNAP 数量减少。这导致ΔMs1 菌株在从静止期生长过程中快速应对环境变化的能力下降。

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