碰撞的核糖体由核酸内切酶 Rae1 与反式翻译共同挽救
Collided ribosomes are rescued by the endonuclease Rae1 and trans-translation
bioRxiv · 2026 年 9 月 24 日 · D. D. Tetreault, K. Callan, C. R. Prince 等 4 人
蛋白质合成机器(核糖体)在信使RNA上卡住时,后面的核糖体会追尾相撞,使细菌丧失合成蛋白质的能力。本研究用枯草芽孢杆菌制造核糖体停滞与碰撞,通过核糖体图谱分析发现碰撞核糖体上富集 tmRNA(一种参与反式翻译的RNA)。无论用抗生素红霉素还是基因手段诱导碰撞,tmRNA 标记活动都升高,且依赖核酸内切酶 Rae1。作者由此提出 CART 机制:Rae1 先切出截短的信使RNA,再交给反式翻译系统回收核糖体。该机制拓展了对细菌应对核糖体碰撞的认识,尚未经同行评审。
为什么推荐给您:在细菌中发现全新的核糖体碰撞救援通路(CART),属重要新机制,但为基础微生物学体外研究。
不需要生物学背景,多打比方
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摘要Abstract
Ribosome stalling is a major problem in all domains of life. When a ribosome stalls, trailing ribosomes may catch up to and collide with the stalled ribosome, depleting protein synthesis capacity. Here, we describe a novel pathway used by Gram-positive bacteria to rescue ribosome collisions. We used the ATPase defective ABCF protein YdiF(EQ2) to induce ribosome stalling and collisions in Bacillus subtilis. Ribosome profiling (Ribo-seq) of YdiF(EQ2)-expressing cells revealed that collided ribosomes are enriched for tmRNA, a functional RNA involved in trans-translation. We confirmed that tmRNA tagging activity is globally increased upon expression of any ATPase defective ABCF as well as in cells treated with the collision-inducing antibiotic erythromycin, suggesting this is a generalizable mechanism to rescue stalled and collided ribosomes. The global increase in tmRNA tagging that occurred in response to both erythromycin and YdiF(EQ2) induced collisions was dependent on the Rae1 endonuclease. Loss of trans-translation in cells experiencing widespread ribosome collisions leads to a severe fitness defect, consistent with the importance of this pathway in rescuing ribosomes stalled on truncated mRNAs that result from ribosome collisions. Altogether, our work supports a model in which Rae1 cleaves mRNA on collided ribosomes, thereby generating a truncated mRNA substrate for trans-translation and leading to rescue and recycling of the collided ribosomes. We term this mechanism Collision-Associated Rae1-induced trans-Translation (CART). CART broadens the repertoire of tools that bacteria use to manage ribosome collisions.