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通过附加的非催化 WHEP 结构域对 Caspase 生成的谷氨酰-tRNA 合成酶进行结构控制。

Structural control of caspase-generated glutamyl-tRNA synthetase by appended noncatalytic WHEP domains.

机构信息

From the Department of Cellular and Molecular Medicine, Lerner Research Institute and.

From the Department of Cellular and Molecular Medicine, Lerner Research Institute and

出版信息

J Biol Chem. 2018 Jun 8;293(23):8843-8860. doi: 10.1074/jbc.M117.807503. Epub 2018 Apr 11.

Abstract

Aminoacyl-tRNA synthetases are ubiquitous, evolutionarily conserved enzymes catalyzing the conjugation of amino acids onto cognate tRNAs. During eukaryotic evolution, tRNA synthetases have been the targets of persistent structural modifications. These modifications can be additive, as in the evolutionary acquisition of noncatalytic domains, or subtractive, as in the generation of truncated variants through regulated mechanisms such as proteolytic processing, alternative splicing, or coding region polyadenylation. A unique variant is the human glutamyl-prolyl-tRNA synthetase (EPRS) consisting of two fused synthetases joined by a linker containing three copies of the WHEP domain (termed by its presence in tryptophanyl-, histidyl-, and glutamyl-prolyl-tRNA synthetases). Here, we identify site-selective proteolysis as a mechanism that severs the linkage between the EPRS synthetases and Caspase action targeted Asp-929 in the third WHEP domain, thereby separating the two synthetases. Using a neoepitope antibody directed against the newly exposed C terminus, we demonstrate EPRS cleavage at Asp-929 and Biochemical and biophysical characterizations of the N-terminally generated EPRS proteoform containing the glutamyl-tRNA synthetase and most of the linker, including two WHEP domains, combined with structural analysis by small-angle neutron scattering, revealed a role for the WHEP domains in modulating conformations of the catalytic core and GSH--transferase-C-terminal-like (GST-C) domain. WHEP-driven conformational rearrangement altered GST-C domain interactions and conferred distinct oligomeric states in solution. Collectively, our results reveal long-range conformational changes imposed by the WHEP domains and illustrate how noncatalytic domains can modulate the global structure of tRNA synthetases in complex eukaryotic systems.

摘要

氨酰-tRNA 合成酶是普遍存在且进化上保守的酶,可催化氨基酸与对应的 tRNA 结合。在真核生物进化过程中,tRNA 合成酶一直是持续结构修饰的靶点。这些修饰可以是附加的,例如通过进化获得非催化结构域,也可以是通过调控机制(如蛋白水解加工、选择性剪接或编码区多聚腺苷酸化)产生截短变体的形式。一种独特的变体是人类谷氨酰-脯氨酰-tRNA 合成酶(EPRS),由两个通过包含三个 WHEP 结构域(因其存在于色氨酰、组氨酰和谷氨酰-脯氨酰-tRNA 合成酶中而得名)的连接体融合而成。在这里,我们发现选择性蛋白水解是一种机制,它可以切断 EPRS 合成酶之间的连接,同时 Caspase 作用的靶标是第三个 WHEP 结构域中的天冬氨酸 929,从而使两个合成酶分离。我们使用针对新暴露的 C 末端的新表位抗体,证明了 EPRS 在天冬氨酸 929 处的切割作用。并且,对含有谷氨酰-tRNA 合成酶和大部分连接体(包括两个 WHEP 结构域)的 N 端生成的 EPRS 蛋白水解产物的生化和生物物理特性进行了分析,结合小角中子散射的结构分析,揭示了 WHEP 结构域在调节催化核心和 GSH-转移酶 C 端样(GST-C)结构域构象方面的作用。WHEP 驱动的构象重排改变了 GST-C 结构域的相互作用,并赋予了其在溶液中独特的寡聚状态。总的来说,我们的研究结果揭示了 WHEP 结构域所施加的长程构象变化,并说明了非催化结构域如何在复杂的真核生物系统中调节 tRNA 合成酶的整体结构。

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