Arginine-rich C9ORF72 ALS proteins stall ribosomes in a manner distinct from a canonical ribosome-associated quality control substrate

J Biol Chem. 2023 Jan;299(1):102774. doi: 10.1016/j.jbc.2022.102774. Epub 2022 Dec 5.

Abstract

Hexanucleotide expansion mutations in C9ORF72 are a frequent cause of amyotrophic lateral sclerosis. We previously reported that long arginine-rich dipeptide repeats (DPRs), mimicking abnormal proteins expressed from the hexanucleotide expansion, caused translation stalling when expressed in cell culture models. Whether this stalling provides a mechanism of pathogenicity remains to be determined. Here, we explored the molecular features of DPR-induced stalling and examined whether known mechanisms such as ribosome quality control (RQC) regulate translation elongation on sequences that encode arginine-rich DPRs. We demonstrate that arginine-rich DPRs lead to stalling in a length-dependent manner, with lengths longer than 40 repeats invoking severe translation arrest. Mutational screening of 40×Gly-Xxx DPRs shows that stalling is most pronounced when Xxx is a charged amino acid (Arg, Lys, Glu, or Asp). Through a genome-wide knockout screen, we find that genes regulating stalling on polyadenosine mRNA coding for poly-Lys, a canonical RQC substrate, act differently in the case of arginine-rich DPRs. Indeed, these findings point to a limited scope for natural regulatory responses to resolve the arginine-rich DPR stalls, even though the stalls may be sensed, as evidenced by an upregulation of RQC gene expression. These findings therefore implicate arginine-rich DPR-mediated stalled ribosomes as a source of stress and toxicity and may be a crucial component in pathomechanisms.

Keywords: C9ORF72 ALS; RNA-protein interaction; RQC; arginine-rich dipeptide repeats; neurodegenerative disease; protein misfolding; ribosome function; ribosome stalling; translation.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amyotrophic Lateral Sclerosis* / genetics
  • Amyotrophic Lateral Sclerosis* / physiopathology
  • Arginine / metabolism
  • C9orf72 Protein / genetics
  • C9orf72 Protein / metabolism
  • Dipeptides / chemistry
  • Gene Knockout Techniques
  • Humans
  • Mutation
  • Ribosomes / genetics
  • Ribosomes / metabolism
  • Up-Regulation

Substances

  • Arginine
  • C9orf72 Protein
  • C9orf72 protein, human
  • Dipeptides