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Updated: Sep 3, 2025

Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Widespread alterations in microRNA biogenesis in human Huntington's disease putamen
Serena Petry1, Rémi Keraudren1, Behnaz Nateghi1
1Centre de Recherche du CHU de Québec-Université Laval, CHUL, Axe Neurosciences, 2705 Boul. Laurier, Neurosciences, P0-9800, Québec, QC, Canada.
Abstract:
Altered microRNA (miRNA) expression is a common feature of Huntington's disease (HD) and could participate in disease onset and progression. However, little is known about the underlying causes of miRNA disruption in HD. We and others have previously shown that mutant Huntingtin binds to Ago2, a central component of miRNA biogenesis, and disrupts mature miRNA levels. In this study, we sought to determine if miRNA maturation per se was compromised in HD. Towards this end, we characterized major miRNA biogenesis pathway components and miRNA maturation products (pri-miRNA, pre-miRNA, and mature) in human HD (N = 41, Vonsattel grades HD2-4) and healthy control (N = 25) subjects. Notably, the striatum (putamen) and cortex (BA39) from the same individuals were analyzed in parallel. We show that Ago2, Drosha, and Dicer were strongly downregulated in human HD at the early stages of the disease. Using a panel of HD-related miRNAs (miR-10b, miR-196b, miR-132, miR-212, miR-127, miR-128), we uncovered various types of maturation defects in the HD brain, the most prominent occurring at the pre-miRNA to mature miRNA maturation step. Consistent with earlier findings, we provide evidence that alterations in autophagy could participate in miRNA maturation defects. Notably, most changes occurred in the striatum, which is more prone to HTT aggregation and neurodegeneration. Likewise, we observed no significant alterations in miRNA biogenesis in human HD cortex and blood, strengthening tissue-specific effects. Overall, these data provide important clues into the underlying mechanisms behind miRNA alterations in HD-susceptible tissues. Further investigations are now required to understand the biological, diagnostic, and therapeutic implications of miRNA/RNAi biogenesis defects in HD and related neurodegenerative disorders.
Insights
Huntington's disease (HD) disrupts microRNA (miRNA) maturation, particularly in the striatum, due to downregulated key biogenesis proteins. Autophagy alterations may contribute to these miRNA defects in HD brain tissue.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Altered microRNA (miRNA) expression is a hallmark of Huntington's disease (HD), impacting disease progression.
- Mutant Huntingtin protein is known to interact with Ago2, a key miRNA biogenesis factor, affecting mature miRNA levels.
Purpose of the Study:
- To investigate whether miRNA maturation itself is compromised in the human HD brain.
- To characterize miRNA biogenesis pathway components and maturation products in HD and control subjects.
Main Methods:
- Analysis of miRNA biogenesis proteins (Ago2, Drosha, Dicer) and miRNA maturation products (pri-miRNA, pre-miRNA, mature miRNA) in human striatum and cortex from HD patients and controls.
- Utilized a panel of HD-related miRNAs to identify maturation defects.
Main Results:
- Significant downregulation of Ago2, Drosha, and Dicer was observed in early-stage human HD striatum.
- Various miRNA maturation defects were identified, predominantly at the pre-miRNA to mature miRNA stage.
- Changes were most pronounced in the striatum, with minimal alterations noted in the cortex and blood, indicating tissue-specific effects.
- Evidence suggests a potential role for altered autophagy in miRNA maturation defects.
Conclusions:
- Downregulation of miRNA biogenesis machinery and impaired miRNA maturation occur in HD-susceptible brain regions like the striatum.
- These findings highlight tissue-specific mechanisms underlying miRNA dysregulation in HD.
- Further research is needed to explore the diagnostic and therapeutic implications of these miRNA biogenesis defects in HD.
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