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1
Activation of initiation factor 2 by ligands and mutations for rapid docking of ribosomal subunits.配体和突变对起始因子 2 的激活作用促进核糖体亚基的快速对接。
EMBO J. 2011 Jan 19;30(2):289-301. doi: 10.1038/emboj.2010.328. Epub 2010 Dec 10.
2
The ribosome-bound initiation factor 2 recruits initiator tRNA to the 30S initiation complex.核糖体结合起始因子 2 将起始 tRNA 募集到 30S 起始复合物中。
EMBO Rep. 2010 Apr;11(4):312-6. doi: 10.1038/embor.2010.12. Epub 2010 Mar 12.
3
Control of translation initiation involves a factor-induced rearrangement of helix 44 of 16S ribosomal RNA.翻译起始的控制涉及16S核糖体RNA的44号螺旋在一个因子诱导下的重排。
Mol Microbiol. 2009 Mar;71(5):1239-49. doi: 10.1111/j.1365-2958.2009.06598.x. Epub 2009 Jan 16.
4
A structural view of translation initiation in bacteria.细菌中翻译起始的结构观点。
Cell Mol Life Sci. 2009 Feb;66(3):423-36. doi: 10.1007/s00018-008-8416-4.
5
Kinetic checkpoint at a late step in translation initiation.翻译起始后期的动力学检查点。
Mol Cell. 2008 Jun 20;30(6):712-20. doi: 10.1016/j.molcel.2008.04.014.
6
Complementary roles of initiation factor 1 and ribosome recycling factor in 70S ribosome splitting.起始因子1和核糖体循环因子在70S核糖体解聚中的互补作用。
EMBO J. 2008 Jun 18;27(12):1706-17. doi: 10.1038/emboj.2008.99. Epub 2008 May 22.
7
Preparation and evaluation of acylated tRNAs.酰化tRNA的制备与评估。
Methods. 2008 Feb;44(2):81-6. doi: 10.1016/j.ymeth.2007.09.003.
8
Characterization of 16S rRNA mutations that decrease the fidelity of translation initiation.降低翻译起始保真度的16S rRNA突变的表征
RNA. 2007 Dec;13(12):2348-55. doi: 10.1261/rna.715307. Epub 2007 Oct 17.
9
The translational fidelity function of IF3 during transition from the 30 S initiation complex to the 70 S initiation complex.IF3在从30S起始复合物向70S起始复合物转变过程中的翻译保真功能。
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10
A quantitative kinetic scheme for 70 S translation initiation complex formation.70S翻译起始复合物形成的定量动力学机制。
J Mol Biol. 2007 Oct 26;373(3):562-72. doi: 10.1016/j.jmb.2007.07.032. Epub 2007 Aug 2.

16S rRNA 螺旋 44 在翻译起始保真度中的作用。

Role of helix 44 of 16S rRNA in the fidelity of translation initiation.

机构信息

Department of Microbiology, Ohio State Biochemistry Program, and Center for RNA Biology, The Ohio State University, Columbus, Ohio 43210, USA.

出版信息

RNA. 2012 Mar;18(3):485-95. doi: 10.1261/rna.031203.111. Epub 2012 Jan 25.

DOI:10.1261/rna.031203.111
PMID:22279149
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3285936/
Abstract

The molecular mechanisms that govern translation initiation to ensure accuracy remain unclear. Here, we provide evidence that the subunit-joining step of initiation is controlled in part by a conformational change in the 1408 region of helix h44. First, chemical probing of 30S initiation complexes formed with either a cognate (AUG) or near-cognate (AUC) start codon shows that an IF1-dependent enhancement at A1408 is reduced in the presence of AUG. This change in reactivity is due to a conformational change rather than loss of IF1, because other portions of the IF1 footprint are unchanged and high concentrations of IF1 fail to diminish the reactivity difference seen at A1408. Second, mutations in h44 such as A1413C stimulate 50S docking and cause reduced reactivity at A1408. Third, streptomycin, which has been shown by Rodnina and coworkers to stimulate 50S docking by reversing the inhibitory effects of IF1, also causes reduced reactivity at A1408. Collectively, these data support a model in which IF1 alters the A1408 region of h44 in a way that makes 50S docking unfavorable, and canonical codon-anticodon pairing in the P site restores h44 to a docking-favorable conformation. We also find that, in the absence of factors, the cognate 30S•AUG•fMet-tRNA ternary complex is >1000-fold more stable than the near-cognate 30S•AUC•fMet-tRNA complex. Hence, the selectivity of ternary complex formation is inherently high, exceeding that of initiation in vivo by more than 10-fold.

摘要

调控翻译起始以确保准确性的分子机制仍不清楚。在这里,我们提供的证据表明,起始的亚基结合步骤部分受 h44 螺旋的 1408 区构象变化的控制。首先,用起始密码子 AUG 或近起始密码子 AUC 形成的 30S 起始复合物的化学探测表明,IF1 依赖性增强在 A1408 处降低,而在 AUG 存在时。这种反应性的变化是由于构象变化而不是 IF1 的丢失,因为 IF1 足迹的其他部分没有变化,并且高浓度的 IF1 不能消除在 A1408 处看到的反应性差异。其次,h44 中的突变,如 A1413C,刺激 50S 对接并导致 A1408 处的反应性降低。第三,链霉素,罗迪纳及其同事已证明通过逆转 IF1 的抑制作用来刺激 50S 对接,也导致 A1408 处的反应性降低。总的来说,这些数据支持了一个模型,即 IF1 以一种使 50S 对接不利的方式改变 h44 的 A1408 区域,而 P 位中的典型密码子-反密码子配对将 h44 恢复到对接有利的构象。我们还发现,在没有因子的情况下,起始密码子 30S•AUG•甲硫氨酸-tRNA 三元复合物的稳定性比近起始密码子 30S•AUC•甲硫氨酸-tRNA 复合物高 1000 倍以上。因此,三元复合物形成的选择性固有地很高,超过体内起始的 10 倍以上。