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TDP-43 dysfunction compromises UPF1-dependent mRNA metabolism in ALS

  • Francesco Alessandrini
  • , Matthew Wright
  • , Tatsuaki Kurosaki
  • , Olga S. Perloff
  • , Marilyn Ngo
  • , Julia K. Kofler
  • , Christopher J. Donnelly
  • , Lynne E. Maquat
  • , Evangelos Kiskinis
  • Northwestern University
  • University of Pittsburgh
  • University of Rochester

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Up-frameshift protein 1 (UPF1)-mediated mRNA decay maintains transcriptome integrity and cellular homeostasis. However, its role in amyotrophic lateral sclerosis (ALS), a neurodegenerative disease characterized by TAR DNA-binding protein 43 (TDP-43) pathology and disrupted mRNA metabolism in motor neurons (MNs), remains unresolved. Here, we integrated RNA sequencing (RNA-seq) after UPF1 knockdown with RNA immunoprecipitation (RIP)-seq of phosphorylated UPF1 to delineate direct UPF1 targets in induced pluripotent stem cell (iPSC)-derived MNs. These transcripts are enriched for autophagy and structurally characterized by GC-rich, long 3′ untranslated regions (3′ UTRs). UPF1 activity, measured by this transcript signature, is diminished in TDP-43-depleted and ALS patient MNs. Mechanistically, TDP-43 depletion impairs UPF1 phosphorylation; the two proteins interact in an RNA-dependent manner and co-aggregate in pathological inclusions in ALS tissue. Transcriptomic analyses reveal convergent regulation of alternative polyadenylation and 3′ UTR length by UPF1 and TDP-43, processes disrupted in ALS models and patient neurons. Our study defines the mRNA surveillance network of UPF1 in MNs and uncovers a link between RNA decay, TDP-43 dysfunction, and ALS neurodegeneration.

Original languageEnglish
Pages (from-to)640-660.e10
JournalNeuron
Volume114
Issue number4
DOIs
StatePublished - Feb 18 2026

Keywords

  • 3′ UTR
  • ALS
  • APA
  • NMD
  • TDP-43
  • UPF1
  • alternative polyadenylation
  • amyotrophic lateral sclerosis
  • iPSC-derived motor neurons
  • nonsense-mediated mRNA decay

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