Institut für Mikrobiologie und Molekularbiologie, University of Giessen, Heinrich-Buff-Ring 26-32, 35392 Giessen, Germany.
Mol Genet Genomics. 2010 Oct;284(4):307-18. doi: 10.1007/s00438-010-0568-x. Epub 2010 Aug 18.
The sRNA RprA is known to activate rpoS translation in E. coli in an osmolarity-dependent manner. We asked whether RprA stability contributes to osmolarity-dependent regulation and how the RNA binding protein Hfq and the major E. coli endonucleases contribute to this turn-over. The study reveals that osmolarity-dependent turn-over of RprA indeed contributes to its osmolarity-dependent abundance. RprA is stabilized by the RNA chaperone Hfq and in absence of Hfq its turn-over is no longer osmolarity-dependent. The stability of the RprA target mRNA rpoS shows a lower extent of osmolarity dependence, which differs from the profile observed for RprA. Thus, the effect of sucrose is specific for individual RNAs. We can attribute a role of the endoribonuclease RNase E in turn-over of RprA and an indirect effect of the endoribonuclease III in vivo. In addition, RprA is stabilized by the presence of rpoS suggesting that hybrid formation with its target may protect it against ribonucleases. In vitro RprA is cleaved by the RNase E containing degradosome and by RNase III and rpoS interferes with RNase III cleavage. We also show that temperature affects the stabilities of the sRNAs binding to rpoS and of rpoS mRNA itself differentially and that higher stability of DsrA with decreasing temperature may contribute to its high abundance at lower temperatures. This study demonstrates that environmental parameters can affect the stability of sRNAs and consequently their abundance.
sRNA RprA 已知以渗透压依赖的方式激活 E. coli 中的 rpoS 翻译。我们询问 RprA 的稳定性是否有助于渗透压依赖性调节,以及 RNA 结合蛋白 Hfq 和主要的 E. coli 内切核酸酶如何对此进行调控。研究揭示了 RprA 的渗透压依赖性降解确实有助于其渗透压依赖性丰度。RprA 被 RNA 伴侣 Hfq 稳定,在没有 Hfq 的情况下,其降解不再依赖渗透压。RprA 靶标 mRNA rpoS 的稳定性表现出较低程度的渗透压依赖性,这与观察到的 RprA 不同。因此,蔗糖的影响是针对单个 RNA 的特异性。我们可以将内切核酸酶 RNase E 在 RprA 降解中的作用归因于内切核酸酶 III 在体内的间接作用。此外,rpoS 的存在稳定了 RprA,表明与靶标形成杂交可能使其免受核糖核酸酶的攻击。体外 RprA 被含有降解体的 RNase E 和 RNase III 切割,并且 rpoS 干扰 RNase III 切割。我们还表明,温度对与 rpoS 结合的 sRNA 的稳定性和 rpoS mRNA 本身的稳定性有不同的影响,并且随着温度的降低 DsrA 的稳定性增加可能有助于其在较低温度下的高丰度。这项研究表明,环境参数可以影响 sRNA 的稳定性,从而影响其丰度。