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休眠因子直接阻止核糖核酸酶在饥饿时进入核糖体。

Hibernation factors directly block ribonucleases from entering the ribosome in response to starvation.

机构信息

Department of Biology, University of Copenhagen, Ole Maaløes Vej 5, DK-2200 Copenhagen, Denmark.

出版信息

Nucleic Acids Res. 2021 Feb 26;49(4):2226-2239. doi: 10.1093/nar/gkab017.

Abstract

Ribosome hibernation is a universal translation stress response found in bacteria as well as plant plastids. The term was coined almost two decades ago and despite recent insights including detailed cryo-EM structures, the physiological role and underlying molecular mechanism of ribosome hibernation has remained unclear. Here, we demonstrate that Escherichia coli hibernation factors RMF, HPF and RaiA (HFs) concurrently confer ribosome hibernation. In response to carbon starvation and resulting growth arrest, we observe that HFs protect ribosomes at the initial stage of starvation. Consistently, a deletion mutant lacking all three factors (ΔHF) is severely inhibited in regrowth from starvation. ΔHF cells increasingly accumulate 70S ribosomes harbouring fragmented rRNA, while rRNA in wild-type 100S dimers is intact. RNA fragmentation is observed to specifically occur at HF-associated sites in 16S rRNA of assembled 70S ribosomes. Surprisingly, degradation of the 16S rRNA 3'-end is decreased in cells lacking conserved endoribonuclease YbeY and exoribonuclease RNase R suggesting that HFs directly block these ribonucleases from accessing target sites in the ribosome.

摘要

核糖体休眠是一种普遍存在于细菌和植物质体中的翻译应激反应。这个术语是在将近 20 年前提出的,尽管最近有了包括详细的冷冻电镜结构在内的新见解,但核糖体休眠的生理作用和潜在的分子机制仍不清楚。在这里,我们证明了大肠杆菌休眠因子 RMF、HPF 和 RaiA(HFs)同时赋予核糖体休眠。在对碳饥饿的反应和由此产生的生长停滞中,我们观察到 HFs 在饥饿的初始阶段保护核糖体。一致地,缺乏所有三种因子(ΔHF)的缺失突变体在从饥饿中恢复生长时受到严重抑制。ΔHF 细胞中越来越多地积累了带有片段化 rRNA 的 70S 核糖体,而野生型 100S 二聚体中的 rRNA 是完整的。在组装的 70S 核糖体中与 HF 相关的 16S rRNA 上观察到 RNA 片段化,这是特异性的。令人惊讶的是,在缺乏保守的内切核酸酶 YbeY 和外切核酸酶 RNase R 的细胞中,16S rRNA 3'-末端的降解减少,这表明 HFs 直接阻止这些核酶进入核糖体中的靶位点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf07/7913689/3aed8e37101a/gkab017fig1.jpg

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