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本文引用的文献

1
How U38, 39, and 40 of many tRNAs become the targets for pseudouridylation by TruA.许多tRNA的U38、39和40如何成为TruA介导假尿苷化修饰的靶点。
Mol Cell. 2007 Apr 27;26(2):189-203. doi: 10.1016/j.molcel.2007.02.027.
2
Crystal structure of pseudouridine synthase RluA: indirect sequence readout through protein-induced RNA structure.假尿苷合酶RluA的晶体结构:通过蛋白质诱导的RNA结构进行间接序列识别
Mol Cell. 2006 Nov 17;24(4):535-45. doi: 10.1016/j.molcel.2006.09.017.
3
tRNA's wobble decoding of the genome: 40 years of modification.转运RNA对基因组的摆动解码:40年的修饰历程
J Mol Biol. 2007 Feb 9;366(1):1-13. doi: 10.1016/j.jmb.2006.11.046. Epub 2006 Nov 15.
4
The substrate specificity of tRNA (m1G37) methyltransferase (TrmD) from Aquifex aeolicus.嗜热栖热菌tRNA(m1G37)甲基转移酶(TrmD)的底物特异性
Genes Cells. 2006 Dec;11(12):1353-65. doi: 10.1111/j.1365-2443.2006.01022.x.
5
Catalysis by the second class of tRNA(m1G37) methyl transferase requires a conserved proline.第二类tRNA(m1G37)甲基转移酶的催化作用需要一个保守的脯氨酸。
Biochemistry. 2006 Jun 20;45(24):7463-73. doi: 10.1021/bi0602314.
6
Construction of Escherichia coli K-12 in-frame, single-gene knockout mutants: the Keio collection.大肠杆菌K-12框内单基因敲除突变体的构建:Keio文库。
Mol Syst Biol. 2006;2:2006.0008. doi: 10.1038/msb4100050. Epub 2006 Feb 21.
7
Recognition and positioning of mRNA in the ribosome by tRNAs with expanded anticodons.通过具有扩展反密码子的tRNA对核糖体中mRNA的识别与定位。
J Mol Biol. 2006 Jul 14;360(3):599-609. doi: 10.1016/j.jmb.2006.05.006. Epub 2006 May 17.
8
Rapid ribosomal translocation depends on the conserved 18-55 base pair in P-site transfer RNA.核糖体的快速易位依赖于P位点转运RNA中保守的18 - 55个碱基对。
Nat Struct Mol Biol. 2006 Apr;13(4):354-9. doi: 10.1038/nsmb1074. Epub 2006 Mar 12.
9
Isolation of a site-specifically modified RNA from an unmodified transcript.从未经修饰的转录本中分离位点特异性修饰的RNA。
Nucleic Acids Res. 2006 Feb 10;34(3):e21. doi: 10.1093/nar/gnj018.
10
An active role for tRNA in decoding beyond codon:anticodon pairing.转运RNA在密码子以外解码中的积极作用:密码子与反密码子配对。
Science. 2005 May 20;308(5725):1178-80. doi: 10.1126/science.1111408.

TrmD和Trm5甲基转移酶对tRNA识别的不同决定因素。

Distinct determinants of tRNA recognition by the TrmD and Trm5 methyl transferases.

作者信息

Christian Thomas, Hou Ya-Ming

机构信息

Department of Biochemistry and Molecular Biology, Thomas Jefferson University, Philadelphia, PA 19107, USA.

出版信息

J Mol Biol. 2007 Oct 26;373(3):623-32. doi: 10.1016/j.jmb.2007.08.010. Epub 2007 Aug 21.

DOI:10.1016/j.jmb.2007.08.010
PMID:17868690
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2064070/
Abstract

TrmD and Trm5 are, respectively, the bacterial and eukarya/archaea methyl transferases that catalyze transfer of the methyl group from S-adenosyl methionine (AdoMet) to the N1 position of G37 in tRNA to synthesize m1G37-tRNA. The m1G37 modification prevents tRNA frameshifts on the ribosome by assuring correct codon-anticodon pairings, and thus is essential for the fidelity of protein synthesis. Although TrmD and Trm5 are derived from unrelated AdoMet families and recognize the cofactor using distinct motifs, the question of whether they select G37 on tRNA by the same, or different, mechanism has not been answered. Here we address this question by kinetic analysis of tRNA truncation mutants that lack domains typically present in the canonical L shaped structure, and by evaluation of the site of modification on tRNA variants with an expanded or contracted anticodon loop. With both experimental approaches, we show that TrmD and Trm5 exhibit separate and distinct mode of tRNA recognition, suggesting that they evolved by independent and non-overlapping pathways from their unrelated AdoMet families. Our results also shed new light onto the significance of the m1G37 modification in the controversial quadruplet-pairing model of tRNA frameshift suppressors.

摘要

TrmD和Trm5分别是细菌以及真核生物/古细菌中的甲基转移酶,它们催化将甲基从S-腺苷甲硫氨酸(AdoMet)转移至tRNA中G37的N1位置,以合成m1G37-tRNA。m1G37修饰通过确保正确的密码子-反密码子配对来防止tRNA在核糖体上发生移码,因此对于蛋白质合成的保真度至关重要。尽管TrmD和Trm5源自不相关的AdoMet家族,并使用不同的基序识别辅因子,但它们是否通过相同或不同的机制在tRNA上选择G37这一问题尚未得到解答。在这里,我们通过对缺乏典型L形结构中通常存在的结构域的tRNA截短突变体进行动力学分析,以及通过评估具有扩展或收缩反密码子环的tRNA变体上的修饰位点来解决这个问题。通过这两种实验方法,我们表明TrmD和Trm5表现出不同且独特的tRNA识别模式,这表明它们从不相关的AdoMet家族通过独立且不重叠的途径进化而来。我们的结果也为tRNA移码抑制子的有争议的四联体配对模型中m1G37修饰的重要性提供了新的见解。