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Distinct substrate specificities of the human tRNA methyltransferases TRMT10A and TRMT10B

机译:人体TRNA甲基转移酶TRMT10a和TRMT10B的明显底物特异性

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摘要

The tRNA m1R9 methyltransferase (Trm10) family is conserved throughout Eukarya and Archaea. Despite the presence of a single Trm10 gene in Archaea and most single-celled eukaryotes, metazoans encode up to three homologs of Trm10. Several disease states correlate with a deficiency in the human homolog TRMT10A, despite the presence of another cytoplasmic enzyme, TRMT10B. Here we investigate these phenomena and demonstrate that human TRMT10A (hTRMT10A) and human TRMT10B (hTRMT10B) are not biochemically redundant. In vitro activity assays with purified hTRMT10A and hTRMT10B reveal a robust activity for hTRMT10B as a tRNAAsp-specific m1A9 methyltransferase and suggest that it is the relevant enzyme responsible for this newly discovered m1A9 modification in humans. Moreover, a comparison of the two cytosolic enzymes with multiple tRNA substrates exposes the enzymes’ distinct substrate specificities, and suggests that hTRMT10B exhibits a restricted selectivity hitherto unseen in the Trm10 enzyme family. Single-turnover kinetics and tRNA binding assays highlight further differences between the two enzymes and eliminate overall tRNA affinity as a primary determinant of substrate specificity for either enzyme. These results increase our understanding of the important biology of human tRNA modification systems, which can aid in understanding the molecular basis for diseases in which their aberrant function is increasingly implicated.
机译:TRNA M1R9甲基转移酶(TRM10)家庭在整个真核节和古亚亚洲保守。尽管古亚亚群和大多数单细胞的真核生物中存在单个TRM10基因,但美容素数于TRM10的三种同源物编码。尽管存在另一种细胞质酶,TRMT10B,但几种疾病状态与人类同源物TRMT10A的缺乏相关。在这里,我们调查这些现象,并证明人类TRMT10A(HTRMT10A)和人类TRMT10B(HTRMT10B)不是生物化学上的冗余。纯化HTRMT10a和HTRMT10b的体外活性测定揭示了HTRMT10B作为特异性特异性M1A9甲基转移酶的稳健活性,并表明它是对人类新发现的新发现的M1A9改性的相关酶。此外,两种细胞溶质与多个TRNA底物的比较暴露酶的不同底物特异性,并表明HTRMT10B在TRM10酶家族中表现出迄今看不见的限制选择性。单周转动力学和TRNA结合测定突出了两种酶之间的进一步差异,并消除了作为任一酶的底物特异性的主要决定性的总体TNA亲和力。这些结果提高了我们对人类TRNA修饰系统的重要生物学的理解,这可以帮助理解其异常函数越来越涉及的疾病的分子基础。

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