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EMBO J. 1995 Jun 1;14(11):2613-9. doi: 10.1002/j.1460-2075.1995.tb07259.x.
2
Complete kinetic mechanism of elongation factor Tu-dependent binding of aminoacyl-tRNA to the A site of the E. coli ribosome.延伸因子Tu依赖的氨酰tRNA与大肠杆菌核糖体A位点结合的完整动力学机制。
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Initial binding of the elongation factor Tu.GTP.aminoacyl-tRNA complex preceding codon recognition on the ribosome.在核糖体上进行密码子识别之前,延伸因子Tu.GTP.氨酰基-tRNA复合物的初始结合。
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Substitution of Val20 by Gly in elongation factor Tu. Effects on the interaction with elongation factors Ts, aminoacyl-tRNA and ribosomes.延伸因子Tu中缬氨酸20被甘氨酸取代。对其与延伸因子Ts、氨酰tRNA及核糖体相互作用的影响。
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The G222D mutation in elongation factor Tu inhibits the codon-induced conformational changes leading to GTPase activation on the ribosome.延伸因子Tu中的G222D突变抑制了密码子诱导的构象变化,而这种变化会导致核糖体上的GTP酶激活。
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Delayed release of inorganic phosphate from elongation factor Tu following GTP hydrolysis on the ribosome.核糖体上的鸟苷三磷酸(GTP)水解后,延伸因子Tu中无机磷酸的延迟释放。
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Biochem Cell Biol. 1995 Nov-Dec;73(11-12):1221-7. doi: 10.1139/o95-132.

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本文引用的文献

1
Evidence for functional interaction between elongation factor Tu and 16S ribosomal RNA.延伸因子Tu与16S核糖体RNA之间功能相互作用的证据。
Proc Natl Acad Sci U S A. 1993 Feb 15;90(4):1364-8. doi: 10.1073/pnas.90.4.1364.
2
A single amino acid substitution in elongation factor Tu disrupts interaction between the ternary complex and the ribosome.延伸因子Tu中的单个氨基酸取代破坏了三元复合物与核糖体之间的相互作用。
J Bacteriol. 1993 Jan;175(1):240-50. doi: 10.1128/jb.175.1.240-250.1993.
3
Crystal structure of active elongation factor Tu reveals major domain rearrangements.活性延伸因子Tu的晶体结构揭示了主要结构域重排。
Nature. 1993 Sep 9;365(6442):126-32. doi: 10.1038/365126a0.
4
The 530 loop of 16S rRNA: a signal to EF-Tu?16S rRNA的530环:对延伸因子Tu的一种信号?
Trends Genet. 1994 Jan;10(1):27-31. doi: 10.1016/0168-9525(94)90016-7.
5
The crystal structure of elongation factor EF-Tu from Thermus aquaticus in the GTP conformation.嗜热水生栖热菌延伸因子EF-Tu处于GTP构象时的晶体结构。
Structure. 1993 Sep 15;1(1):35-50. doi: 10.1016/0969-2126(93)90007-4.
6
Mutations to kirromycin resistance occur in the interface of domains I and III of EF-Tu.GTP.对奇霉素耐药的突变发生在EF-Tu.GTP的结构域I和III的界面处。
FEBS Lett. 1994 Sep 26;352(2):118-22. doi: 10.1016/0014-5793(94)00937-6.
7
Transient conformational states of aminoacyl-tRNA during ribosome binding catalyzed by elongation factor Tu.延伸因子Tu催化的核糖体结合过程中氨酰-tRNA的瞬时构象状态。
Biochemistry. 1994 Oct 11;33(40):12267-75. doi: 10.1021/bi00206a033.
8
GTP consumption of elongation factor Tu during translation of heteropolymeric mRNAs.异聚体mRNA翻译过程中延伸因子Tu的GTP消耗
Proc Natl Acad Sci U S A. 1995 Mar 14;92(6):1945-9. doi: 10.1073/pnas.92.6.1945.
9
The structural and functional basis for the kirromycin resistance of mutant EF-Tu species in Escherichia coli.大肠杆菌中突变型EF-Tu物种对奇霉素耐药性的结构和功能基础。
EMBO J. 1994 Oct 17;13(20):4877-85. doi: 10.1002/j.1460-2075.1994.tb06815.x.
10
Effect of ribosome binding and translocation on the anticodon of tRNAPhe as studied by wybutine fluorescence.通过怀丁荧光研究核糖体结合与易位对苯丙氨酰-tRNA反密码子的影响。
Nucleic Acids Res. 1982 Apr 24;10(8):2651-63. doi: 10.1093/nar/10.8.2651.

核糖体上GTP水解之前延伸因子Tu的密码子依赖性构象变化。

Codon-dependent conformational change of elongation factor Tu preceding GTP hydrolysis on the ribosome.

作者信息

Rodnina M V, Fricke R, Kuhn L, Wintermeyer W

机构信息

Institute of Molecular Biology, University Witten/Herdecke, Germany.

出版信息

EMBO J. 1995 Jun 1;14(11):2613-9. doi: 10.1002/j.1460-2075.1995.tb07259.x.

DOI:10.1002/j.1460-2075.1995.tb07259.x
PMID:7781613
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC398375/
Abstract

The mechanisms by which elongation factor Tu (EF-Tu) promotes the binding of aminoacyl-tRNA to the A site of the ribosome and, in particular, how GTP hydrolysis by EF-Tu is triggered on the ribosome, are not understood. We report steady-state and time-resolved fluorescence measurements, performed in the Escherichia coli system, in which the interaction of the complex EF-Tu.GTP.Phe-tRNAPhe with the ribosomal A site is monitored by the fluorescence changes of either mant-dGTP [3'-O-(N-methylanthraniloyl)-2-deoxyguanosine triphosphate], replacing GTP in the complex, or of wybutine in the anticodon loop of the tRNA. Additionally, GTP hydrolysis is measured by the quench-flow technique. We find that codon-anticodon interaction induces a rapid rearrangement within the G domain of EF-Tu around the bound nucleotide, which is followed by GTP hydrolysis at an approximately 1.5-fold lower rate. In the presence of kirromycin, the activated conformation of EF-Tu appears to be frozen. The steps following GTP hydrolysis--the switch of EF-Tu to the GDP-bound conformation, the release of aminoacyl-tRNA from EF-Tu to the A site, and the dissociation of EF-Tu-GDP from the ribosome--which are altogether suppressed by kirromycin, are not distinguished kinetically. The results suggest that codon recognition by the ternary complex on the ribosome initiates a series of structural rearrangements resulting in a conformational change of EF-Tu, possibly involving the effector region, which, in turn, triggers GTP hydrolysis.

摘要

延伸因子Tu(EF-Tu)促进氨酰tRNA与核糖体A位点结合的机制,尤其是EF-Tu在核糖体上如何触发GTP水解,目前尚不清楚。我们报告了在大肠杆菌系统中进行的稳态和时间分辨荧光测量,其中通过mant-dGTP [3'-O-(N-甲基邻氨基苯甲酰基)-2-脱氧鸟苷三磷酸](取代复合物中的GTP)或tRNA反密码子环中的怀丁的荧光变化来监测复合物EF-Tu·GTP·苯丙氨酰-tRNA苯丙氨酸与核糖体A位点的相互作用。此外,通过猝灭流动技术测量GTP水解。我们发现密码子-反密码子相互作用诱导EF-Tu的G结构域内围绕结合核苷酸的快速重排,随后GTP水解速率降低约1.5倍。在奇霉素存在下,EF-Tu的活化构象似乎被冻结。GTP水解后的步骤——EF-Tu转变为结合GDP的构象、氨酰tRNA从EF-Tu释放到A位点以及EF-Tu-GDP从核糖体解离——这些步骤都被奇霉素完全抑制,在动力学上无法区分。结果表明,核糖体上的三元复合物对密码子识别引发了一系列结构重排,导致EF-Tu的构象变化,可能涉及效应区域,进而触发GTP水解。