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Ihara, A.

Publications and source records attributed to Ihara, A..

3 recordsLinked to original sources

Dual-site specificity of the archaeal tRNA m2G methyltransferase Trm14

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.

molecular biology↗

A transfer RNA methyltransferase with an unusual domain composition catalyzes 2'-O-methylation at position 6 in tRNA.

Thermococcus kodakarensis tRNATrp contains 2'-O-methylcytidine at position 6 (Cm6). However, the tRNA methyltransferase responsible for the modification has not been identified. Using comparative genomics we predicted TK1257 as a candidate for the modification. Biochemical and mass spectrometry studies of purified recombinant TK1257 gene product show it to possess a tRNA methyltransferase activity for Cm6 formation. This protein has a highly unusual composition of domains, containing N-terminal ferredoxin-like, SPOUT catalytic and THUMP domains. Previous to this study, all known THUMP-related tRNA methyltransferases were shown to contain a Rossmann fold catalytic domain and the nucleosides they produced were N2-methylguanosine and/or N2, N2-dimethylguanosine. Therefore, our findings extend the knowledge of architecture of tRNA methyltransferases. We named the TK1257 gene product TrmTS and showed it can synthesize Am6 and Um6 as well as Cm6. A trmTS gene deletion strain showed slight growth retardation at high temperatures. Site-directed mutagenesis studies based on structural model revealed catalytically and structurally important amino acid residues in TrmTS and identified a TrmTS-specific linker is structurally essential. We showed that TrmTS recognizes the 3'-CCA terminal region and a stretch loop connected with at least two stems in RNA. Finally, we constructed a model of the binding between TrmTS and tRNA.

biochemistry↗

Cell surface architecture of the cultivated DPANN archaeon Nanobdella aerobiophila

The DPANN archaeal clade includes obligately ectosymbiotic species. Their cell surfaces potentially play an important role in the symbiotic interaction between the ectosymbionts and their hosts. However, little is known about the mechanism of the ectosymbiosis. Here, we show cell surface structures of the cultivated DPANN archaeon Nanobdella aerobiophila strain MJ1T and its host Metallosphaera sedula strain MJ1HA, using a variety of electron microscopy techniques, i.e., negative-staining transmission electron microscopy (TEM), quick-freeze deep-etch (QFDE) TEM, and 3D electron tomography. The thickness, unit size, and lattice symmetry of the S-layer of strain MJ1T were different from those of the host archaeon strain MJ1HA. Genomic and transcriptomic analyses highlighted the most highly expressed MJ1T gene for a putative S-layer protein with multiple glycosylation sites and immunoglobulin-like folds, which has no sequence homology to known S-layer proteins. In addition, genes for putative pectin lyase- or lectin-like extracellular proteins, which are potentially involved in symbiotic interaction, were found in the MJ1T genome based on in silico 3D protein structure prediction. Live cell imaging at the optimum growth temperature of 65{degrees}C indicated that cell complexes of strains MJ1T and MJ1HA were motile, but sole MJ1T cells were not. Taken together, we propose a model of the symbiotic interaction and cell cycle of Nanobdella aerobiophila. ImportanceDPANN archaea are widely distributed in a variety of natural and artificial environments, and may play a considerable role in the microbial ecosystem. All of the cultivated DPANN archaea so far need host organisms for their growth, i.e., obligately ectosymbiotic. However, the mechanism of the ectosymbiosis by DPANN archaea is largely unknown. To this end, we performed a comprehensive analysis of the cultivated DPANN archaeon, Nanobdella aerobiophila, using electron microscopy, live cell imaging, transcriptomics, and genomics including 3D protein structure prediction. Based on the results, we propose a reasonable model of the symbiotic interaction and cell cycle of Nanobdella aerobiophila, which will enhance our understanding of the enigmatic physiology and ecological significance of DPANN archaea.

microbiology↗