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An unusual mechanism for EF-Tu activation during tmRNA-mediated ribosome rescue

机译:在tmRNA介导的核糖体拯救过程中EF-Tu激活的异常机制

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摘要

In bacteria, ribosomes stalled on truncated mRNAs are rescued by transfer-messenger RNA (tmRNA) and its protein partner SmpB. Acting like tRNA, the aminoacyl-tmRNA/SmpB complex is delivered to the ribosomal A site by EF-Tu and accepts the transfer of the nascent polypeptide. Although SmpB binding within the decoding center is clearly critical for licensing tmRNA entry into the ribosome, it is not known how activation of EF-Tu occurs in the absence of a codon–anticodon interaction. A recent crystal structure revealed that SmpB residue His136 stacks on 16S rRNA nucleotide G530, a critical player in the canonical decoding mechanism. Here we use pre-steady-state kinetic methods to probe the role of this interaction in ribosome rescue. We find that although mutation of His136 does not reduce SmpB's affinity for the ribosomal A-site, it dramatically reduces the rate of GTP hydrolysis by EF-Tu. Surprisingly, the same mutation has little effect on the apparent rate of peptide-bond formation, suggesting that release of EF-Tu from the tmRNA/SmpB complex on the ribosome may occur prior to GTP hydrolysis. Consistent with this idea, we find that peptidyl transfer to tmRNA is relatively insensitive to the antibiotic kirromycin. Taken together, our studies provide a model for the initial stages of ribosomal rescue by tmRNA.
机译:在细菌中,停滞在截短的mRNA上的核糖体通过转移信使RNA(tmRNA)及其蛋白伴侣SmpB得以拯救。氨酰基-tmRNA / SmpB复合物的作用类似于tRNA,通过EF-Tu传递至核糖体A位点,并接受新生多肽的转移。尽管解码中心内的SmpB结合对于tmRNA进入核糖体的许可至关重要,但尚不知道在没有密码子与反密码子相互作用的情况下,如何进行EF-Tu激活。最近的晶体结构显示,SmpB残基His136堆积在16S rRNA核苷酸G530上,这是规范解码机制中的关键角色。在这里,我们使用稳态前动力学方法来探究这种相互作用在核糖体拯救中的作用。我们发现,尽管His136突变并没有降低SmpB对核糖体A位点的亲和力,但它显着降低了EF-Tu对GTP水解的速率。出乎意料的是,相同的突变对肽键形成的表观速率几乎没有影响,表明EF-Tu从核糖体上的tmRNA / SmpB复合物中释放可能在GTP水解之前发生。与这个想法一致,我们发现肽基转移到tmRNA对抗生素奇霉素相对不敏感。总之,我们的研究为tmRNA拯救核糖体的初始阶段提供了模型。

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