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CLIP-Seq Analysis Enables the Design of Ribosomal RNA Bait Oligonucleotides That Protect Against C9orf72 ALS/FTD-Associated Poly-GR Pathophysiology

Ortega, J. A.; Sasselli, I. R.; Boccitto, M.; Fleming, A. C.; Fortuna, T. R.; Li, Y.; Sato, K.; Clemons, T. D.; Daley, E. L.; Nguyen, T. P.; Anderson, E. N.; Ichida, J.; Pandey, U. B.; Wolin, S.; Stupp, S. I.; Kiskinis, E.

2022-12-31 neuroscience
10.1101/2022.12.30.522259 bioRxiv
Show abstract

Amyotrophic lateral sclerosis and frontotemporal dementia patients with a hexanucleotide repeat expansion in C9ORF72 (C9-HRE) accumulate poly-GR and poly-PR aggregates. The pathogenicity of these arginine-rich dipeptide repeats (R-DPRs) is thought to be driven by their propensity to bind to low complexity domains of multivalent proteins. However, the ability of R-DPRs to bind native RNA and the significance of this interaction remains unclear. We used computational and experimental approaches to characterize the physicochemical properties of R-DPRs and their interaction with RNA. We find that poly-GR predominantly binds ribosomal RNA (rRNA) in cells and exhibits an interaction that is predicted to be energetically stronger than that for associated ribosomal proteins. Critically, modified rRNA "bait" oligonucleotides restore poly-GR-associated ribosomal deficits in cells and ameliorate poly-GR toxicity in patient neurons and Drosophila models. Our work strengthens the hypothesis that ribosomal function is impaired by R-DPRs, highlights a role for direct rRNA binding in mediating ribosomal disfunction, and presents a strategy for protecting against C9-HRE pathophysiological mechanisms.

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