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mRNA nuclear clustering leads to a difference in mutant huntingtin mRNA and protein silencing by siRNAs in vivo
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Abstract
Huntington’s disease (HD) is an autosomal dominant neurodegenerative disease caused by CAG repeat expansion in the first exon of the huntingtin gene (
HTT
). Oligonucleotide therapeutics, such as short interfering RNA (siRNA), reduce levels of huntingtin mRNA and protein
in vivo
and are considered a viable therapeutic strategy. However, the extent to which they silence HTT mRNA in the nucleus is not established. We synthesized siRNA cross-reactive to mouse (wild-type)
Htt
and human (mutant)
HTT
in a di-valent scaffold and delivered to two mouse models of HD. In both models, di-valent siRNA sustained lowering of wild-type
Htt
, but not mutant
HTT
mRNA expression in striatum and cortex. Near-complete silencing of both mutant HTT protein and wild-type Htt protein was observed in both models. Subsequent fluorescent in situ hybridization (FISH) analysis shows that di-valent siRNA acts predominantly on cytoplasmic mutant
HTT
transcripts, leaving clustered mutant
HTT
transcripts in the nucleus largely intact in treated HD mouse brains. The observed differences between mRNA and protein levels, exaggerated in the case of extended repeats, might apply to other repeat-associated neurological disorders.
Title: mRNA nuclear clustering leads to a difference in mutant huntingtin mRNA and protein silencing by siRNAs
in vivo
Description:
Abstract
Huntington’s disease (HD) is an autosomal dominant neurodegenerative disease caused by CAG repeat expansion in the first exon of the huntingtin gene (
HTT
).
Oligonucleotide therapeutics, such as short interfering RNA (siRNA), reduce levels of huntingtin mRNA and protein
in vivo
and are considered a viable therapeutic strategy.
However, the extent to which they silence HTT mRNA in the nucleus is not established.
We synthesized siRNA cross-reactive to mouse (wild-type)
Htt
and human (mutant)
HTT
in a di-valent scaffold and delivered to two mouse models of HD.
In both models, di-valent siRNA sustained lowering of wild-type
Htt
, but not mutant
HTT
mRNA expression in striatum and cortex.
Near-complete silencing of both mutant HTT protein and wild-type Htt protein was observed in both models.
Subsequent fluorescent in situ hybridization (FISH) analysis shows that di-valent siRNA acts predominantly on cytoplasmic mutant
HTT
transcripts, leaving clustered mutant
HTT
transcripts in the nucleus largely intact in treated HD mouse brains.
The observed differences between mRNA and protein levels, exaggerated in the case of extended repeats, might apply to other repeat-associated neurological disorders.
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