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Published on: June 27, 2018
Does the Mutant CAG Expansion in Huntingtin mRNA Interfere with Exonucleolytic Cleavage of its First Exon?
Wanzhao Liu1, Edith L Pfister1, Lori A Kennington1
1RNA Therapeutics Institute and Department of Medicine, University of Massachusetts Medical School, Worcester, MA, USA.
Background:
Silencing mutant huntingtin mRNA by RNA interference (RNAi) is a therapeutic strategy for Huntington's disease. RNAi induces specific endonucleolytic cleavage of the target HTT mRNA, followed by exonucleolytic processing of the cleaved mRNA fragments.
Objectives:
We investigated the clearance of huntingtin mRNA cleavage products following RNAi, to find if particular huntingtin mRNA sequences persist. We especially wanted to find out if the expanded CAG increased production of a toxic mRNA species by impeding degradation of human mutant huntingtin exon 1 mRNA.
Methods:
Mice expressing the human mutant HTT transgene with 128 CAG repeats (YAC128 mice) were injected in the striatum with self-complementary AAV9 vectors carrying a miRNA targeting exon 48 of huntingtin mRNA (scAAV-U6-miRNA-HTT-GFP). Transgenic huntingtin mRNA levels were measured in striatal lysates after two weeks. For qPCR, we used species specific primer-probe combinations that together spanned 6 positions along the open reading frame and untranslated regions of the human huntingtin mRNA. Knockdown was also measured in the liver following tail vein injection.
Results:
Two weeks after intrastriatal administration of scAAV9-U6-miRNA-HTT-GFP, we measured transgenic mutant huntingtin in striatum using probes targeting six different sites along the huntingtin mRNA. Real time PCR showed a reduction of 29% to 36% in human HTT. There was no significant difference in knockdown measured at any of the six sites, including exon 1. In liver, we observed a more pronounced HTT mRNA knockdown of 70% to 76% relative to the untreated mice, and there were also no significant differences among sites.
Conclusions:
Our results demonstrate that degradation is equally distributed across the human mutant huntingtin mRNA following RNAi-induced cleavage.
Insights
RNA interference (RNAi) effectively silences mutant huntingtin mRNA in Huntington's disease models. Degradation of the cleaved huntingtin mRNA is uniform across all sites, including exon 1, preventing toxic species accumulation.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- RNA interference (RNAi) is a therapeutic strategy for Huntington's disease (HD).
- RNAi silences mutant huntingtin (HTT) mRNA via endonucleolytic and exonucleolytic cleavage.
- Investigating the clearance of HTT mRNA cleavage products is crucial for HD therapy.
Purpose of the Study:
- To investigate the clearance of huntingtin mRNA cleavage products after RNAi.
- To determine if specific huntingtin mRNA sequences persist after cleavage.
- To assess if expanded CAG repeats impede the degradation of mutant huntingtin exon 1 mRNA.
Main Methods:
- Mice with human mutant HTT transgene (YAC128) received intrastriatal AAV9 vectors with miRNA targeting huntingtin mRNA.
- Transgenic huntingtin mRNA levels were quantified in striatal and liver tissues using qPCR.
- Six primer-probe sets targeted different sites along the huntingtin mRNA, including exon 1.
Main Results:
- Intrastriatal AAV9 delivery reduced mutant huntingtin mRNA by 29-36% in the striatum.
- No significant differences in knockdown were observed at any of the six targeted sites, including exon 1.
- Liver tissue showed a more pronounced knockdown of 70-76% with no site-specific differences.
Conclusions:
- RNAi-induced cleavage of mutant huntingtin mRNA results in uniform degradation.
- This uniform degradation prevents the accumulation of potentially toxic mRNA species.
- The findings support RNAi as a viable therapeutic strategy for Huntington's disease.
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