Structural and biochemical analysis of the dual-specificity Trm10 enzyme from Thermococcus kodakaraensis prompts reconsideration of its catalytic mechanism

Ranjan Kumar Singh, Andre Feller, Martine Roovers, Dany Van Elder, Lina Wauters, Louis Droogmans, Wim Versees

Research output: Contribution to journalArticleAcademicpeer-review

17 Citations (Scopus)
218 Downloads (Pure)

Abstract

tRNA molecules get heavily modified post-transcriptionally. The N-1 methylation of purines at position 9 of eukaryal and archaeal tRNA is catalyzed by the SPOUT methyltranferase Trm10. Remarkably, while certain Trm10 orthologs are specific for either guanosine or adenosine, others show a dual specificity. Structural and functional studies have been performed on guanosine-and adenosine-specific enzymes. Here we report the structure and biochemical analysis of the dual-specificity enzyme from Thermococcus kodakaraensis (TkTrm10). We report the first crystal structure of a construct of this enzyme, consisting of the N-terminal domain and the catalytic SPOUT domain. Moreover, crystal structures of the SPOUT domain, either in the apo form or bound to S-adenosyl-L-methionine or S-adenosyl-L-homocysteine reveal the conformational plasticity of two active site loops upon substrate binding. Kinetic analysis shows that TkTrm10 has a high affinity for its tRNA substrates, while the enzyme on its own has a very low methyltransferase activity. Mutation of either of two active site aspartate residues (Asp206 and Asp245) to Asn or Ala results in only modest effects on the N-1 methylation reaction, with a small shift toward a preference for m1G formation over m1A formation. Only a double D206A/D245A mutation severely impairs activity. These results are in line with the recent finding that the single active-site aspartate was dispensable for activity in the guanosine-specific Trm10 from yeast, and suggest that also dual-specificity Trm10 orthologs use a noncanonical tRNA methyltransferase mechanism without residues acting as general base catalysts.

Original languageEnglish
Pages (from-to)1080-1092
Number of pages13
JournalRNA
Volume24
Issue number8
DOIs
Publication statusPublished - Aug-2018

Keywords

  • SPOUT
  • dual specificity
  • methyl transferase
  • tRNA modification
  • RNA MODIFICATION ENZYME
  • 23S RIBOSOMAL-RNA
  • ESCHERICHIA-COLI
  • METHYLTRANSFERASE TRM10
  • CRYSTAL-STRUCTURE
  • GENE
  • IDENTIFICATION
  • YEAST
  • PROTEIN
  • RECOGNITION

Fingerprint

Dive into the research topics of 'Structural and biochemical analysis of the dual-specificity Trm10 enzyme from Thermococcus kodakaraensis prompts reconsideration of its catalytic mechanism'. Together they form a unique fingerprint.

Cite this