Ashwin and FAM98 paralogs define nuclear and cytoplasmic RNA ligase complexes for tRNA biogenesis

The tRNA ligase complex (tRNA-LC) seals tRNA exon halves in the nucleus during pre-tRNA splicing and XBP1-mRNA exons in the cytoplasm as part of the unfolded protein response (UPR). This dual function requires the tRNA-LC to be either nuclear or cytoplasmic. Here, we reveal that Ashwin (ASW), the vertebrate-specific subunit of the tRNA-LC, serves as its nuclear import factor. ASW contains a dual nuclear localisation signal (NLS) which, upon disruption, leads to the retention of the tRNA-LC in the cytoplasm, impairing pre-tRNA splicing with the consequent accumulation of 5' tRNA fragments. We also show that the tRNA-LC exists in three forms, depending on which FAM98 paralog is bound, either FAM98A, FAM98B or FAM98C. ASW interacts exclusively with the FAM98B-containing complex, ensuring its nuclear localization for tRNA biogenesis. Attaching an NLS to RTCB, the catalytic and indispensable tRNA-LC subunit, rescues pre-tRNA splicing in cells depleted of ASW. We hypothesize that vertebrates evolved ASW to localize a sub-population of tRNA-LC to the nucleus, while using FAM98 paralogs to retain a fraction of RTCB in the cytoplasm to splice XBP1-mRNA during UPR.

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Publication Details

Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-77451-x
Primary Topic
RNA modifications and cancer
Type
article
Field-Weighted Citation Impact
0.00

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article

Ashwin and FAM98 paralogs define nuclear and cytoplasmic RNA ligase complexes for tRNA biogenesis

Martin Jínek, Moritz M. Pfleiderer, Moshe Leitner, Javier Martı̂nez et al.
Nature Communications
RNA modifications and cancer
article

Ashwin and FAM98 paralogs define nuclear and cytoplasmic RNA ligase complexes for tRNA biogenesis

Martin Jínek, Moritz M. Pfleiderer, Moshe Leitner, Javier Martı̂nez, Marius Moser, Nathan Raynaud
article en

Abstract

The tRNA ligase complex (tRNA-LC) seals tRNA exon halves in the nucleus during pre-tRNA splicing and XBP1-mRNA exons in the cytoplasm as part of the unfolded protein response (UPR). This dual function requires the tRNA-LC to be either nuclear or cytoplasmic. Here, we reveal that Ashwin (ASW), the vertebrate-specific subunit of the tRNA-LC, serves as its nuclear import factor. ASW contains a dual nuclear localisation signal (NLS) which, upon disruption, leads to the retention of the tRNA-LC in the cytoplasm, impairing pre-tRNA splicing with the consequent accumulation of 5' tRNA fragments. We also show that the tRNA-LC exists in three forms, depending on which FAM98 paralog is bound, either FAM98A, FAM98B or FAM98C. ASW interacts exclusively with the FAM98B-containing complex, ensuring its nuclear localization for tRNA biogenesis. Attaching an NLS to RTCB, the catalytic and indispensable tRNA-LC subunit, rescues pre-tRNA splicing in cells depleted of ASW. We hypothesize that vertebrates evolved ASW to localize a sub-population of tRNA-LC to the nucleus, while using FAM98 paralogs to retain a fraction of RTCB in the cytoplasm to splice XBP1-mRNA during UPR.

Nature CommunicationsVol. 17(1)
University of Zurich (CH), Université Paris Cité (FR), Max Perutz Labs (AT), Vienna Biocenter (AT), Université Paris 8 (FR), Medical University of Vienna (AT)
Austrian Science Fund, Universität Wien, Medizinische Universität Wien
Openalex Percentile: Top 18%
RNA modifications and cancer
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Ashwin and FAM98 paralogs define nuclear and cytoplasmic RNA ligase complexes for tRNA biogenesis — Martin Jínek, Moritz M. Pfleiderer, et al. · Nature Communications (2026) | TGRS Research Map | TGRS