Dual-site specificity of the archaeal tRNA m2G methyltransferase Trm14
Matsuda, T.; Yokogawa, T.; Hidetaka, S.; Sora, M.; Ihara, A.; Toba, A.; Kawai, K.; Norimoto, G.; Hirata, A.; Hori, H.; Yamagami, R.
Show abstract
N2-methylguanosine (m2G) is widely found at multiple positions in tRNAs across the three domains of life. Tryptophan tRNA from Thermococcus kodakarensis contains m2G at position 67. We previously proposed that the tRNA m2G methyltransferase Trm14 is responsible for m2G67 formation in tRNATrp from T. kodakarensis, although Trm14 was originally identified as the enzyme catalyzing m2G6 formation in tRNACys in Methanocaldococcus jannaschii. Thus, it remained unclear whether Trm14 could also methylate G67. Here, we characterized archaeal Trm14. Biochemical analyses using recombinant T. kodakarensis Trm14 revealed that the enzyme catalyzes m2G formation at positions 6 and 67 in T. kodakarensis tRNACys and tRNATrp transcripts, respectively. Mass spectrometric analyses demonstrated the loss of m2G6 and m2G67 in native tRNACys and tRNATrp, respectively, from a T. kodakarensis trm14 gene disruptant strain, providing direct evidence for the dual-site specificity of T. kodakarensis Trm14. The growth phenotype of the trm14 gene disruptant strain was comparable to that of the wild-type strain. In contrast, a trm14/trm11 double disruptant, in which trm11 encodes the tRNA m2G10/m22G10 methyltransferase, exhibited severe growth retardation at 95 {degrees}C. This suggests that m2G6/m2G67 and m2G10/m22G10 cooperatively contribute to cellular fitness at high temperatures. Biochemical analyses revealed that Trm14 methylates all 46 T. kodakarensis tRNA transcripts. Furthermore, we found that recombinant M. jannaschii Trm14 methylated both positions. In contrast, the bacterial ortholog TrmN modified only position 6 in tRNA. Overall, this study expands our understanding of archaeal Trm14 by demonstrating its broader substrate specificity and the physiological significance of these modifications under hyperthermophilic conditions.
Matching journals
The top 9 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Expansion Segments in Bacterial and Archaeal 5S Ribosomal RNAs 93%
- A tRNA-specific function for tRNA methyltransferase Trm10 is associated with a new tRNA quality control mechanism in Saccharomyces cerevisiae 93%
- Interplay between substrate recognition, 5’ end tRNA processing and methylation activity of human mitochondrial RNase P 92%
Similar papers in this journal
- Human trans-editing enzyme displays tRNA acceptor stem specificity and relaxed amino acid selectivity 92%
- tRNA m1G9 modification depends on substrate-specific RNA conformational changes induced by the methyltransferase Trm10 91%
- The structure of a highly conserved picocyanobacterial protein reveals a Tudor domain with an RNA binding function 91%
Similar papers in this journal
- Determinants of target prioritization and regulatory hierarchy for the bacterial small RNA SgrS 91%
- The dual role of a multi-heme cytochrome in methanogenesis: MmcA is important for energy conservation and carbon metabolism in Methanosarcina acetivorans 91%
- Bacillus subtilis RNase HII is inefficient at processing guanosine monophosphate and damaged ribonucleotides 91%
Similar papers in this journal
- Direct RNA Sequencing Reveals Stress-Dependent and Pathway-Specific rRNA Modification Reprogramming During 50S Biogenesis 91%
- Dual Noncanonical Amino Acid Incorporation Enabling Chemoselective Protein Modification at Two Distinct Sites in Yeast 89%
- N-terminal extensions strengthen hydrophobic inter-subunit interactions between HU's C-terminal domains to frustrate heterodimer formation 88%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.