Cryptic intronic transcriptional initiation generates efficient endogenous mRNA templates for C9orf72-associated RAN translation

S Shannon L. Miller (Department of Neurology, University of Michigan) K Katelyn M. Green (Department of Neurology, University of Michigan) B Bradley Crone (Department of Computational Medicine and Bioinformatics, University of Michigan) J Jessica A. Switzenberg E Elizabeth M. H. Tank (Department of Neurology, University of Michigan) A Amy Krans (Department of Neurology, University of Michigan) K Karen Jansen-West (Department of Neuroscience, Mayo Clinic) C Clare M. Wieland (Department of Neurology, University of Michigan) E Eric W. Ji (Department of Neurology, University of Michigan) L Leonard Petrucelli (Department of Neuroscience, Mayo Clinic) S Sami J. Barmada (Department of Neurology, University of Michigan) A Alan P. Boyle P Peter K. Todd (Department of Neurology, University of Michigan)

Abstract

Intronic GGGGCC hexanucleotide repeat expansions in C9orf72 are the most common genetic cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Despite its intronic location, this repeat avidly supports synthesis of pathogenic dipeptide repeat (DPR) proteins via repeat-associated non-AUG (RAN) translation. However, the template RNA species that undergoes RAN translation endogenously remains unclear. Using long-read based 5′ RNA ligase-mediated rapid amplification of cDNA ends (5′ Repeat-RLM-RACE), we identified C9orf72 transcripts initiating within intron 1 in a C9BAC mouse model, patient-derived iNeurons, and iNeuron-derived polysomes. These cryptic m 7 G-capped mRNAs are at least partially polyadenylated and are more abundant than transcripts derived from intron retention or circular intron lariats. In RAN translation reporter assays, intronic template transcripts–even those with short (32 nucleotide) leaders–exhibited robust expression compared to exon–intron and repeat-containing lariat reporters. To assess endogenous repeat-containing lariat RNA contributions to RAN translation, we enhanced endogenous lariat stability by knocking down the lariat debranching enzyme Dbr1. However, this modulation did not impact DPR production in patient-derived iNeurons. These findings identify cryptic, linear, m 7 G-capped intron-initiating C9orf72 mRNAs as an endogenous template for RAN translation and DPR production, with implications for disease pathogenesis and therapeutic development.

Article Details

Volume / Issue Vol. 122, Issue 32
Published August 12, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (13)

S

Shannon L. Miller

Department of Neurology, University of Michigan

K

Katelyn M. Green

Department of Neurology, University of Michigan

B

Bradley Crone

Department of Computational Medicine and Bioinformatics, University of Michigan

J

Jessica A. Switzenberg

E

Elizabeth M. H. Tank

Department of Neurology, University of Michigan

A

Amy Krans

Department of Neurology, University of Michigan

K

Karen Jansen-West

Department of Neuroscience, Mayo Clinic

C

Clare M. Wieland

Department of Neurology, University of Michigan

E

Eric W. Ji

Department of Neurology, University of Michigan

L

Leonard Petrucelli

Department of Neuroscience, Mayo Clinic

S

Sami J. Barmada

Department of Neurology, University of Michigan

A

Alan P. Boyle

P

Peter K. Todd

Department of Neurology, University of Michigan