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来自两个生命领域的 tRNA:m2G6 甲基转移酶 Trm14/TrmN 的晶体结构。

Crystal structures of the tRNA:m2G6 methyltransferase Trm14/TrmN from two domains of life.

机构信息

VIB Department of Structural Biology, Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussel, Belgium.

出版信息

Nucleic Acids Res. 2012 Jun;40(11):5149-61. doi: 10.1093/nar/gks163. Epub 2012 Feb 22.

Abstract

Methyltransferases (MTases) form a major class of tRNA-modifying enzymes needed for the proper functioning of tRNA. Recently, RNA MTases from the TrmN/Trm14 family that are present in Archaea, Bacteria and Eukaryota have been shown to specifically modify tRNA(Phe) at guanosine 6 in the tRNA acceptor stem. Here, we report the first X-ray crystal structures of the tRNA m(2)G6 (N(2)-methylguanosine) MTase (TTC)TrmN from Thermus thermophilus and its ortholog (Pf)Trm14 from Pyrococcus furiosus. Structures of (Pf)Trm14 were solved in complex with the methyl donor S-adenosyl-l-methionine (SAM or AdoMet), as well as the reaction product S-adenosyl-homocysteine (SAH or AdoHcy) and the inhibitor sinefungin. (TTC)TrmN and (Pf)Trm14 consist of an N-terminal THUMP domain fused to a catalytic Rossmann-fold MTase (RFM) domain. These results represent the first crystallographic structure analysis of proteins containing both THUMP and RFM domain, and hence provide further insight in the contribution of the THUMP domain in tRNA recognition and catalysis. Electrostatics and conservation calculations suggest a main tRNA binding surface in a groove between the THUMP domain and the MTase domain. This is further supported by a docking model of TrmN in complex with tRNA(Phe) of T. thermophilus and via site-directed mutagenesis.

摘要

甲基转移酶(MTases)构成了一类主要的 tRNA 修饰酶,对于 tRNA 的正常功能至关重要。最近,来自古菌、细菌和真核生物的 TrmN/Trm14 家族的 RNA MTases已被证明可以特异性修饰 tRNA(Phe)在 tRNA 受体茎中的鸟苷 6 位。在这里,我们报告了来自嗜热栖热菌的 tRNA m(2)G6(N(2)-甲基鸟苷)MTase(TTC)TrmN及其同源物(Pf)Trm14 的第一个 X 射线晶体结构。(Pf)Trm14 的结构已在与甲基供体 S-腺苷-L-甲硫氨酸(SAM 或 AdoMet)、反应产物 S-腺苷-L-同型半胱氨酸(SAH 或 AdoHcy)和抑制剂 sinefungin 复合物中得到解决。(TTC)TrmN 和(Pf)Trm14 由 N 端 THUMP 结构域融合到催化 Rossmann 折叠 MTase(RFM)结构域组成。这些结果代表了含有 THUMP 和 RFM 结构域的蛋白质的第一个晶体结构分析,从而进一步深入了解了 THUMP 结构域在 tRNA 识别和催化中的作用。静电和保守性计算表明,THUMP 结构域和 MTase 结构域之间的凹槽是主要的 tRNA 结合表面。这通过 TrmN 与 T. thermophilus 的 tRNA(Phe)的对接模型和定点突变进一步得到证实。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4553/3367198/9a36b196723c/gks163f1.jpg

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