Journal Article DZNE-2025-01030

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PUS10-induced tRNA fragmentation impacts retrotransposon-driven inflammation.

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2025
Cell Press Maryland Heights, MO

Cell reports 44(6), 115735 () [10.1016/j.celrep.2025.115735]

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Abstract: Pseudouridine synthases (PUSs) catalyze the isomerization of uridine (U)-to-pseudouridine (Ψ) and have emerging roles in development and disease. How PUSs adapt gene expression under stress remains mostly unexplored. We identify an unconventional role for the Ψ 'writer' PUS10 impacting intracellular innate immunity. Using Pus10 knockout mice, we uncover cell-intrinsic upregulation of interferon (IFN) signaling, conferring resistance to inflammation in vivo. Pus10 loss alters tRNA-derived small RNAs (tdRs) abundance, perturbing translation and endogenous retroelements expression. These alterations promote proinflammatory RNA-DNA hybrids accumulation, potentially activating cyclic GMP-AMP synthase (cGAS)-stimulator of interferon gene (STING). Supplementation with selected tdR pools partly rescues these effects through interactions with RNA processing factors that modulate immune responses, revealing a regulatory circuit that counteracts cell-intrinsic inflammation. By extension, we define a PUS10-specific molecular fingerprint linking its dysregulation to human autoimmune disorders, including inflammatory bowel diseases. Collectively, these findings establish PUS10 as a viral mimicry modulator, with broad implications for innate immune homeostasis and autoimmunity.

Keyword(s): Animals (MeSH) ; Retroelements: genetics (MeSH) ; Inflammation: genetics (MeSH) ; Inflammation: pathology (MeSH) ; Inflammation: metabolism (MeSH) ; Mice (MeSH) ; RNA, Transfer: metabolism (MeSH) ; RNA, Transfer: genetics (MeSH) ; Mice, Knockout (MeSH) ; Humans (MeSH) ; Immunity, Innate (MeSH) ; Intramolecular Transferases: metabolism (MeSH) ; Intramolecular Transferases: genetics (MeSH) ; Mice, Inbred C57BL (MeSH) ; Hydro-Lyases: metabolism (MeSH) ; Hydro-Lyases: genetics (MeSH) ; Interferons: metabolism (MeSH) ; Signal Transduction (MeSH) ; Membrane Proteins: metabolism (MeSH) ; CP: Molecular biology ; PUS10 ; RNA-DNA hybrids ; cGAS-STING ; hematopoietic stem cell ; inflammation ; inflammatory bowel disease ; interferon ; pseudouridine ; tRNA-derived small RNAs ; transposable elements ; viral mimicry ; Retroelements ; RNA, Transfer ; pseudouridine synthases ; Intramolecular Transferases ; Hydro-Lyases ; Interferons ; Membrane Proteins

Classification:

Contributing Institute(s):
  1. Nuclear Function in CNS Pathophysiology (AG Salomoni)
Research Program(s):
  1. 352 - Disease Mechanisms (POF4-352) (POF4-352)

Appears in the scientific report 2025
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Medline ; Creative Commons Attribution CC BY 4.0 ; DOAJ ; OpenAccess ; Article Processing Charges ; BIOSIS Previews ; Biological Abstracts ; Clarivate Analytics Master Journal List ; DOAJ Seal ; Essential Science Indicators ; Fees ; IF >= 5 ; JCR ; SCOPUS ; Science Citation Index Expanded ; Web of Science Core Collection
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 Record created 2025-09-02, last modified 2025-09-21