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Translational standby sites: how ribosomes may deal with the rapid folding kinetics of mRNA.

机译:翻译备用位点:核糖体如何处理mRNA的快速折叠动力学。

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摘要

We have previously shown that stable base-pairing at a translational initiation site in Escherichia coli can inhibit translation by competing with the binding of ribosomes. When the base-pairing is not too strong, this competition is won by the ribosomes, resulting in efficient translation from a structured ribosome binding site (RBS). We now re-examine these results in the light of RNA folding kinetics and find that the window during which a folded RBS is open is generally much too short to recruit a 30S ribosomal subunit from the cytoplasm. We argue that to achieve efficient expression, a 30S subunit must already be in contact with the mRNA while this is still folded, to shift into place as soon as the structure opens. Single-stranded regions flanking the structure may constitute a standby site, to which the 30S subunit can attach non-specifically. We propose a steady-state kinetic model for the early steps of translational initiation and use this to examine various quantitative aspects of standby binding. The kinetic model provides an explanation of why the earlier equilibrium competition model predicted implausibly high 30S-mRNA affinities. Because all RNA is structured to some degree, standby binding is probably a general feature of translational initiation.
机译:我们以前已经表明,在大肠杆菌中翻译起始位点的稳定碱基配对可以通过与核糖体的结合竞争而抑制翻译。当碱基配对不太强时,核糖体会赢得竞争,从而导致结构化核糖体结合位点(RBS)的有效翻译。现在,我们根据RNA折叠动力学重新检查这些结果,发现折叠的RBS打开的窗口通常太短,无法从细胞质中募集30S核糖体亚基。我们认为,要获得有效的表达,必须将30S亚基与mRNA接触,同时将其折叠,以便在结构打开后立即就位。结构侧翼的单链区域可以构成一个备用位点,30S亚基可以非特异性地附着到该备用位点。我们为翻译起始的早期阶段提出了稳态动力学模型,并使用它来研究备用结合的各种定量方面。动力学模型解释了为什么较早的平衡竞争模型难以预测地高30S-mRNA亲和力。由于所有RNA的结构都在某种程度上,待机结合可能是翻译起始的一般特征。

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