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Published on: April 30, 2020
CAG RNAs induce DNA damage and apoptosis by silencing NUDT16 expression in polyglutamine degeneration
Shaohong Peng1,2, Pei Guo3,4, Xiao Lin2
1Laboratory of Drosophila Research, The Chinese University of Hong Kong, Hong Kong, China.
Abstract:
DNA damage plays a central role in the cellular pathogenesis of polyglutamine (polyQ) diseases, including Huntington's disease (HD). In this study, we showed that the expression of untranslatable expanded CAG RNA per se induced the cellular DNA damage response pathway. By means of RNA sequencing (RNA-seq), we found that expression of the Nudix hydrolase 16 (NUDT16) gene was down-regulated in mutant CAG RNA-expressing cells. The loss of NUDT16 function results in a misincorporation of damaging nucleotides into DNAs and leads to DNA damage. We showed that small CAG (sCAG) RNAs, species generated from expanded CAG transcripts, hybridize with CUG-containing NUDT16 mRNA and form a CAG-CUG RNA heteroduplex, resulting in gene silencing of NUDT16 and leading to the DNA damage and cellular apoptosis. These results were further validated using expanded CAG RNA-expressing mouse primary neurons and in vivo R6/2 HD transgenic mice. Moreover, we identified a bisamidinium compound, DB213, that interacts specifically with the major groove of the CAG RNA homoduplex and disfavors the CAG-CUG heteroduplex formation. This action subsequently mitigated RNA-induced silencing complex (RISC)-dependent NUDT16 silencing in both in vitro cell and in vivo mouse disease models. After DB213 treatment, DNA damage, apoptosis, and locomotor defects were rescued in HD mice. This work establishes NUDT16 deficiency by CAG repeat RNAs as a pathogenic mechanism of polyQ diseases and as a potential therapeutic direction for HD and other polyQ diseases.
Insights
Expanded CAG RNA triggers DNA damage in polyglutamine diseases by silencing NUDT16. A compound, DB213, rescues this effect, offering a therapeutic strategy for Huntington
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- DNA damage is a key factor in polyglutamine (polyQ) diseases like Huntington's disease (HD).
- Expanded CAG repeat RNA expression is implicated in polyQ disease pathogenesis.
Purpose of the Study:
- To investigate the mechanism by which expanded CAG RNA induces DNA damage.
- To identify therapeutic targets for polyQ diseases.
Main Methods:
- RNA sequencing (RNA-seq) to identify gene expression changes.
- Analysis of RNA heteroduplex formation and gene silencing.
- In vitro cell models and in vivo R6/2 HD transgenic mouse models.
- Treatment with a novel compound, DB213.
Main Results:
- Expanded CAG RNA expression down-regulates Nudix hydrolase 16 (NUDT16) expression.
- Small CAG RNAs form CAG-CUG heteroduplexes with NUDT16 mRNA, leading to gene silencing.
- Loss of NUDT16 function causes misincorporation of damaging nucleotides into DNA.
- DB213 treatment prevented heteroduplex formation, rescued NUDT16 silencing, and ameliorated DNA damage, apoptosis, and motor deficits in HD mice.
Conclusions:
- NUDT16 deficiency induced by CAG repeat RNAs is a pathogenic mechanism in polyQ diseases.
- DB213 shows therapeutic potential for Huntington's disease and other polyQ disorders by targeting RNA-induced silencing.
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