ArticleScientific reports2025
Decoding the general role of tRNA queuosine modification in eukaryotes.
Article in Scientific reports, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Anticodon nucleotide modifications affect translational tuning by the ribosomal CAR surface.bioRxiv : the preprint server for biology · 2026Article
- Correspondence: Radiofrequency and pulsed magnetic fields in LPS‑induced neuroinflammation: interpreting the evidence for PI3K/AKT/HIF‑1α‑mediated protection.Molecular biology reports · 2026Article
- tRNA modifications in cancer: from molecular mechanisms to clinical translation.Biomarker research · 2026Review
- Hidden Diversity in Yeast tRNAs: Comparative Genomics and Modification Mapping in a Eukaryotic Subphylum.bioRxiv : the preprint server for biology · 2026Article
- Coronaviruses reprogram the tRNA epitranscriptome to favor viral protein expression.Nature communications · 2026Article
- Gut microbiota dysbiosis in COPD patients increases the level of queuine in the blood serum abnormally enhancing the viability of lung epithelial cells.Frontiers in immunology · 2026Article
- RNA language model and graph attention network for RNA and small molecule binding sites prediction.Bioinformatics (Oxford, England) · 2025Article
- Comparative Genomics of Chloropicon primus and Chloropicon roscoffensis Provide Insights into the Evolutionary Dynamics and Ecological Success of These Tiny Green Algae in Marine Environments.Genome biology and evolution · 2025Article
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Authors and funding
4 authors.
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Abstract
Transfer RNA (tRNA) contains modified nucleosides essential for modulating protein translation. One of these modifications is queuosine (Q), which affects NAU codons translation rate. For decades, multiple studies have reported a wide variety of species-specific Q-related phenotypes in different eukaryotes, hindering the identification of a general underlying mechanism behind that phenotypic diversity. Here, through bioinformatics analysis of representative eukaryotic genomes we have predicted: i) the genes enriched in NAU codons, whose translation would be affected by tRNA Q-modification (Q-genes); and ii) the specific biological processes of each organism enriched in Q-genes, which generally in eukaryotes would be related to ubiquitination, phosphatidylinositol metabolism, splicing, DNA repair or cell cycle. These bioinformatics results provide evidence to support for the first time in eukaryotes that the wide diversity of phenotypes associated with tRNA Q-modification previously described in various species would directly depend on the control of Q-genes translation, and would allow prediction of unknown Q-dependent processes, such as Akt activation and p53 expression, which we have tested in human cancer cells. Considering the relevance of the Q-related processes, our findings may support further exploration of the role of Q in cancer and other pathologies. Moreover, since eukaryotes must salvage Q from bacteria, we suggest that changes in Q supply by the microbiome would affect the expression of host Q-genes, altering its physiology.
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