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本文引用的文献

1
Control of catalytic cycle by a pair of analogous tRNA modification enzymes.一对类似的 tRNA 修饰酶对催化循环的控制。
J Mol Biol. 2010 Jul 9;400(2):204-17. doi: 10.1016/j.jmb.2010.05.003. Epub 2010 May 7.
2
Stereochemical mechanisms of tRNA methyltransferases.转运RNA甲基转移酶的立体化学机制。
FEBS Lett. 2010 Jan 21;584(2):278-86. doi: 10.1016/j.febslet.2009.11.075.
3
Tertiary structure checkpoint at anticodon loop modification in tRNA functional maturation.tRNA功能成熟过程中反密码子环修饰的三级结构检查点。
Nat Struct Mol Biol. 2009 Oct;16(10):1109-15. doi: 10.1038/nsmb.1653. Epub 2009 Sep 13.
4
Protein arginine methylation in mammals: who, what, and why.哺乳动物中的蛋白质精氨酸甲基化:何人、何物及为何。
Mol Cell. 2009 Jan 16;33(1):1-13. doi: 10.1016/j.molcel.2008.12.013.
5
Dynamic protein methylation in chromatin biology.染色质生物学中的动态蛋白质甲基化
Cell Mol Life Sci. 2009 Feb;66(3):407-22. doi: 10.1007/s00018-008-8303-z.
6
MODOMICS: a database of RNA modification pathways. 2008 update.MODOMICS:RNA修饰途径数据库。2008年更新版。
Nucleic Acids Res. 2009 Jan;37(Database issue):D118-21. doi: 10.1093/nar/gkn710. Epub 2008 Oct 14.
7
The homotetrameric phosphoseryl-tRNA synthetase from Methanosarcina mazei exhibits half-of-the-sites activity.来自马氏甲烷八叠球菌的同四聚体磷酸丝氨酰 - tRNA合成酶表现出半位点活性。
J Biol Chem. 2008 Aug 8;283(32):21997-2006. doi: 10.1074/jbc.M801838200. Epub 2008 Jun 17.
8
Redundant synthesis of cysteinyl-tRNACys in Methanosarcina mazei.马氏甲烷八叠球菌中半胱氨酰 - tRNA半胱氨酸的冗余合成。
J Biol Chem. 2008 Aug 8;283(32):22007-17. doi: 10.1074/jbc.M801839200. Epub 2008 Jun 17.
9
Aminoacylation of tRNA with phosphoserine for synthesis of cysteinyl-tRNA(Cys).用磷酸丝氨酸对tRNA进行氨酰化以合成半胱氨酰-tRNA(Cys)。
Nat Struct Mol Biol. 2008 May;15(5):507-14. doi: 10.1038/nsmb.1423. Epub 2008 Apr 20.
10
Crystal structure of archaeal tRNA(m(1)G37)methyltransferase aTrm5.古细菌tRNA(m(1)G37)甲基转移酶aTrm5的晶体结构
Proteins. 2008 Sep;72(4):1274-89. doi: 10.1002/prot.22019.

tRNA m1G37 甲基转移酶 Trm5 的 N-甲基化作用机制。

Mechanism of N-methylation by the tRNA m1G37 methyltransferase Trm5.

机构信息

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

出版信息

RNA. 2010 Dec;16(12):2484-92. doi: 10.1261/rna.2376210. Epub 2010 Oct 27.

DOI:10.1261/rna.2376210
PMID:20980671
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2995409/
Abstract

Trm5 is a eukaryal and archaeal tRNA methyltransferase that catalyzes methyl transfer from S-adenosylmethionine (AdoMet) to the N(1) position of G37 directly 3' to the anticodon. While the biological role of m(1)G37 in enhancing translational fidelity is well established, the catalytic mechanism of Trm5 has remained obscure. To address the mechanism of Trm5 and more broadly the mechanism of N-methylation to nucleobases, we examined the pH-activity profile of an archaeal Trm5 enzyme, and performed structure-guided mutational analysis. The data reveal a marked dependence of enzyme-catalyzed methyl transfer on hydrogen ion equilibria: the single-turnover rate constant for methylation increases by one order of magnitude from pH 6.0 to reach a plateau at pH 7.0. This suggests a mechanism involving proton transfer from G37 as the key element in catalysis. Consideration of the kinetic data in light of the Trm5-tRNA-AdoMet ternary cocrystal structure, determined in a precatalytic conformation, suggests that proton transfer is associated with an induced fit rearrangement of the complex that precedes formation of the reactive configuration in the active site. Key roles for the conserved R145 side chain in stabilizing a proposed oxyanion at G37-O(6), and for E185 as a general base to accept the proton from G37-N(1), are suggested based on the mutational analysis.

摘要

Trm5 是一种真核生物和古菌的 tRNA 甲基转移酶,它催化 S-腺苷甲硫氨酸(AdoMet)向反密码子直接 3' 位的 G37 的 N(1)位置的甲基转移。虽然 m(1)G37 增强翻译保真度的生物学作用已得到充分证实,但 Trm5 的催化机制仍然不清楚。为了解决 Trm5 的机制,更广泛地说,为了解决 N-甲基化到核碱基的机制,我们检查了一种古菌 Trm5 酶的 pH 活性曲线,并进行了结构导向的突变分析。数据显示,酶催化的甲基转移对氢离子平衡有明显的依赖性:单轮反应常数从 pH 6.0 增加一个数量级,在 pH 7.0 达到平台。这表明该机制涉及 G37 的质子转移作为催化的关键要素。考虑到动力学数据与 Trm5-tRNA-AdoMet 三元复合物结构的关系,该结构以预催化构象确定,表明质子转移与活性位点中形成反应性构型之前的复合物的诱导契合重排有关。基于突变分析,建议保守的 R145 侧链在稳定 G37-O(6)上的拟氧阴离子以及 E185 作为接受 G37-N(1)上质子的通用碱方面发挥关键作用。