Isolation and Characterization of the Human tRNA-(N1G37) Methyltransferase (TRM5) and Comparison to the Escherichia coli TrmD Protein
- 18 June 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 43 (28) , 9243-9255
- https://doi.org/10.1021/bi049671q
Abstract
A human TRM5 cDNA has been cloned and recombinant tRNA-N1G37 methyltransferase was produced. The recombinant enzyme methylates the N1 position of guanosine 37 (G37) in selected tRNA transcripts utilizing S-adenosyl methionine. The effects of RNA sequence and structure on the methylation reaction in comparison between the Escherichia coli TrmD and human TRM5 recombinant enzymes are presented. G37-methylation by TRM5 occurs regardless of the nature of the nucleotide at position 36. TRM5 also methylates inosine at position 37 unlike TrmD, which recognizes the G36pG37 motif preferentially and does not methylate inosine. New evidence is presented concerning TrmD showing that with some tRNA species, A at position 36 is also recognized. The TRM5 enzyme is sensitive to subtle changes in the tRNA−protein tertiary interaction leading to loss of activity. The TrmD enzyme is more tolerant of alterations in tRNA−protein tertiary interactions as long as the core tRNA structure and the G36pG37 are present. The TRM5 enzyme does not have an absolute requirement for magnesium ions, whereas TrmD requires magnesium to express activity. TRM5 demonstrates much higher affinity for substrates with Km values for tRNA that are nanomolar. TrmD has Km values for tRNA in the micromolar range. Recombinant TRM5 appears to function as a 60 772 Da monomer, while recombinant TrmD functions as a homodimer of 30 586 Da subunits. Bioinformatic analysis of the human TRM5 genomic locus (KIAA1393) have identified TRM5 homologues in eukaryotes and archaea; however, no significantly homologous regions were identified in any prokaryotes including the TrmD gene.Keywords
This publication has 8 references indexed in Scilit:
- Insights into Catalysis by a Knotted TrmD tRNA MethyltransferaseJournal of Molecular Biology, 2003
- A primordial tRNA modification required for the evolution of life?The EMBO Journal, 2001
- Prediction of the Coding Sequences of Unidentified Human Genes. XVI. The Complete Sequences of 150 New cDNA Clones from Brain Which Code for Large Proteins in vitroDNA Research, 2000
- Tad1p, a yeast tRNA-specific adenosine deaminase, is related to the mammalian pre-mRNA editing enzymes ADAR1 and ADAR2The EMBO Journal, 1998
- Enzymatic conversion of adenosine to inosine and to N1-methylinosine in transfer RNAs: A reviewBiochimie, 1996
- Co-variation of tRNA Abundance and Codon Usage inEscherichia coliat Different Growth RatesJournal of Molecular Biology, 1996
- Enzymatic conversion of guanosine 3′ adjacent to the anticodon of yeast tRNAPhe to N1-methylguanosine and the wye nucleoside: dependence on the anticodon sequence.The EMBO Journal, 1987
- Purification and characterization of transfer RNA (guanine-1)methyltransferase from Escherichia coli.Journal of Biological Chemistry, 1983