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Terauchi, M.

Publications and source records attributed to Terauchi, M..

4 recordsLinked to original sources

The mammalian rapid tRNA decay pathway is critical for N⁷-methylguanosine-hypomodified tRNA degradation under physiological conditions

Chemical modifications of transfer RNAs (tRNAs) are integral to their stability and to translation. Loss of N7-methylguanosine (m7G) on specific tRNAs reduces their steady-state abundance and impairs translation in mammals, but whether these decreases reflect active degradation under physiological growth conditions is unresolved. Here, using human HCT116 cells, we show that knockdown of the 5'[->]3' exonuclease, XRN2, restores tRNA levels diminished by METTL1 depletion. Leveraging conditional protein knockdown, we performed time-resolved measurements of mature tRNA levels and directly quantified decay kinetics. We show that in the absence of heat stress, mG-hypomodified tRNAs undergo XRN2-dependent accelerated decay. Finally, partial loss of the Drosophila XRN2 ortholog, Rat1, genetically rescues male sterility of mettl1 mutants, demonstrating organismal relevance. These findings define a conserved constitutive rapid tRNA decay pathway in mammals and indicate inhibition of tRNA decay as a potential therapeutic strategy in disorders caused by tRNA hypomodification.

molecular biology↗

Hybridization during the adaptive radiation of Oxera (Lamiaceae) in New Caledonia: Is flower shape shift driven by introgression?

Recent genomic studies have suggested that hybridization may play a significant role in adaptive radiation, rapid speciation, and convergent evolution. The genus Oxera, a plant taxon thought to have diversified at its beginning through adaptive radiation in New Caledonia, provided an opportunity to investigate these processes. Within the robusta subclade of Oxera, characterized by bird-pollinated yellow-orange flowers, convergent evolution of flower shape is likely to have occurred. We aimed to elucidate the hybridization history of the robusta subclade by whole genome sequencing and MIG-seq data. Our analyses revealed an ancestral introgression from O. coriacea to O. sympatrica, whose flowers are remarkably similar to each other. Among the introgressed genomic regions, we identified several genes potentially involved in flower shape development. O. sympatrica and its sympatric sister species exhibit distinct flower shapes, and pollinator-mediated reproductive isolation presumed to be a major barrier between them. The ancestral introgression uncovered in this study may have driven the convergent evolution of flower shape in the robusta subclade and played a crucial role in the speciation process of O. sympatrica. These finding contribute to our understanding of the interplay between hybridization, adaptive radiation, and speciation process.

evolutionary biology↗

Chromosomal fusions and subsequent rearrangements shaped octopus genomes

Why some animal groups retain ancestral chromosomal complements while others change significantly is a fundamental question in evolutionary genomics. Few systems exist where accumulations of chromosomal changes can be studied in the context of morphological innovation. In coleoid cephalopods (octopus, squid, cuttlefish), an ancient coleoid chromosomal rearrangement event (ACCRE) has led to a substantial increase in the chromosome number and a new set of chromosomal homologies. Compared to typical molluscan or bilaterian genomes, ACCRE has enabled the origin of many novel regulatory regions in coleoid cephalopods. However, the discrepancies between extant octopodiform (octopus, [~]30 chromosomes) and decapodiform (squid and cuttlefish, [~]46 chromosomes) karyotypes and the direction of these evolutionary changes remain unexplained. Here we provide a draft genome assembly of the vampire squid Vampyroteuthis sp., the largest cephalopod genome sequenced to-date (over 10 gigabasepairs). Through syntenic comparisons, we infer that this basally branching octopodiform species shows partial retention of the chromosomal complement of Decapodiformes, indicating its more ancestral state and the derived nature of the octopod karyotype. Together with the analysis of a new chromosome-level assembly of the pelagic octopod Argonauta hians, we identified irreversible chromosomal fusion-with-mixing events followed by inter-chromosomal translocations in octopods. We show that this secondary reduction and mixing within octopod chromosomes has enabled the origin of a more entangled genomic configuration, shedding light onto the early evolutionary transitions within the clade. Our results offer broader insights into general patterns of chromosomal evolution following large-scale rearrangement events in animal genomes. Significance statementHow changes to the ancient animal synteny result in novel chromosomal homologies is difficult to dissect due to the lack of intermediate states. Here we report that the genome of Vampyroteuthis, one of the largest animal genomes sequenced to-date (over 11 gigabasepairs), despite its phylogenetic position within the octopodiform cephalopods, partially retains squid and cuttlefish chromosomal complement, reflecting an ancestral karyotypic state that existed at the time of divergence between these cephalopod lineages. Our findings reveal karyotype reductions through chromosomal fusions were followed by inter-chromosomal translocations in octopods, leading to a more specialized genomic and gene regulatory architecture. These data show how chromosomal fusions can act as drivers of further inter-chromosomal rearrangements in animal genomes.

genomics↗

Mettl1-dependent m7G tRNA modification is essential for maintaining spermatogenesis and fertility in Drosophila melanogaster

N7-methylguanosine (m7G) in the variable loop region of tRNA is catalyzed by METTL1/WDR4 heterodimer and stabilizes target tRNA. Here, we reveal essential functions of Mettl1 in Drosophila fertility. Knockout of Mettl1 (Mettl1-KO) lost the elongated spermatids and mature sperm, which was fully rescued by a Mettl1-transgene expression, but not a catalytic-dead Mettl1 transgene. This demonstrates that Mettl1-dependent m7G is required for spermatogenesis. Mettl1-KO resulted in a loss of m7G modification on a subset of tRNAs and a decreased level of tRNA expression. Strikingly, overexpression of the translational elongation factor, EF11, which can compete with the rapid tRNA decay (RTD) pathway in S. cerevisiae, significantly counteracted the sterility of Mettl1-KO males, supporting a critical role of m7G modification of tRNAs in spermatogenesis. Ribosome profiling showed that Mettl1-KO led to the ribosome stalling at codons decoded by tRNAs that were reduced in expression. Mettl1-KO also significantly reduced the translation efficiency of genes involved in elongated spermatid formation and sperm stability. These findings reveal a developmental role for m7G tRNA modifications and indicate that m7G modification-dependent tRNA stability differs among tissues.

molecular biology↗