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通过翻译抑制对大肠杆菌多核苷酸磷酸化酶进行不依赖核糖核酸酶III的自体调控。

RNase III-Independent Autogenous Regulation of Escherichia coli Polynucleotide Phosphorylase via Translational Repression.

作者信息

Carzaniga Thomas, Dehò Gianni, Briani Federica

机构信息

Dipartimento di Bioscienze, Università degli Studi di Milano, Milan, Italy.

Dipartimento di Bioscienze, Università degli Studi di Milano, Milan, Italy

出版信息

J Bacteriol. 2015 Jun;197(11):1931-8. doi: 10.1128/JB.00105-15. Epub 2015 Mar 30.

Abstract

UNLABELLED

The complex posttranscriptional regulation mechanism of the Escherichia coli pnp gene, which encodes the phosphorolytic exoribonuclease polynucleotide phosphorylase (PNPase), involves two endoribonucleases, namely, RNase III and RNase E, and PNPase itself, which thus autoregulates its own expression. The models proposed for pnp autoregulation posit that the target of PNPase is a mature pnp mRNA previously processed at its 5' end by RNase III, rather than the primary pnp transcript (RNase III-dependent models), and that PNPase activity eventually leads to pnp mRNA degradation by RNase E. However, some published data suggest that pnp expression may also be regulated through a PNPase-dependent, RNase III-independent mechanism. To address this issue, we constructed isogenic Δpnp rnc(+) and Δpnp Δrnc strains with a chromosomal pnp-lacZ translational fusion and measured β-galactosidase activity in the absence and presence of PNPase expressed by a plasmid. Our results show that PNPase also regulates its own expression via a reversible RNase III-independent pathway acting upstream from the RNase III-dependent branch. This pathway requires the PNPase RNA binding domains KH and S1 but not its phosphorolytic activity. We suggest that the RNase III-independent autoregulation of PNPase occurs at the level of translational repression, possibly by competition for pnp primary transcript between PNPase and the ribosomal protein S1.

IMPORTANCE

In Escherichia coli, polynucleotide phosphorylase (PNPase, encoded by pnp) posttranscriptionally regulates its own expression. The two models proposed so far posit a two-step mechanism in which RNase III, by cutting the leader region of the pnp primary transcript, creates the substrate for PNPase regulatory activity, eventually leading to pnp mRNA degradation by RNase E. In this work, we provide evidence supporting an additional pathway for PNPase autogenous regulation in which PNPase acts as a translational repressor independently of RNase III cleavage. Our data make a new contribution to the understanding of the regulatory mechanism of pnp mRNA, a process long since considered a paradigmatic example of posttranscriptional regulation at the level of mRNA stability.

摘要

未标注

大肠杆菌pnp基因编码磷酸化外切核糖核酸酶多核苷酸磷酸化酶(PNPase),其复杂的转录后调控机制涉及两种内切核糖核酸酶,即核糖核酸酶III(RNase III)和核糖核酸酶E(RNase E),以及PNPase自身,因此它能自动调节自身的表达。针对pnp自动调节提出的模型假定,PNPase的作用靶点是一个成熟的pnp mRNA,该mRNA先前已由RNase III在其5'端进行了加工,而不是初级pnp转录本(RNase III依赖模型),并且PNPase活性最终会导致RNase E介导的pnp mRNA降解。然而,一些已发表的数据表明,pnp表达也可能通过一种不依赖RNase III的PNPase依赖机制进行调控。为了解决这个问题,我们构建了带有染色体pnp - lacZ翻译融合的同基因Δpnp rnc(+)和Δpnp Δrnc菌株,并在有无质粒表达的PNPase存在的情况下测量了β - 半乳糖苷酶活性。我们的结果表明,PNPase还通过一条可逆的、不依赖RNase III的途径调节自身表达,该途径作用于RNase III依赖分支的上游。此途径需要PNPase的RNA结合结构域KH和S1,但不需要其磷酸解活性。我们认为,PNPase不依赖RNase III的自动调节发生在翻译抑制水平,可能是通过PNPase与核糖体蛋白S1竞争pnp初级转录本实现的。

重要性

在大肠杆菌中,多核苷酸磷酸化酶(PNPase,由pnp编码)在转录后调节自身表达。目前提出的两种模型假定了一种两步机制,其中RNase III通过切割pnp初级转录本的前导区域,为PNPase的调节活性创造底物,最终导致RNase E介导的pnp mRNA降解。在这项工作中,我们提供了证据支持PNPase自身调节的另一条途径,即PNPase作为一种翻译抑制因子,独立于RNase III切割发挥作用。我们的数据为理解pnp mRNA的调控机制做出了新贡献,长期以来,这一过程一直被视为mRNA稳定性水平转录后调控的典型例子。

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