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Published on: March 11, 2020
circRNA Regulates Dopaminergic Synapse, MAPK, and Long-term Depression Pathways in Huntington Disease
Ernesto Marfil-Marin1, Mónica Santamaría-Olmedo1, Adriana PerezGrovas-Saltijeral1
1Department of Genetics, National Institute of Rehabilitation, Calzada Mexico-Xochimilco 289. Arenal de Guadalupe. Z. C, 14389, Mexico City, Mexico.
Insights
This study identifies differentially expressed circular RNAs (circRNAs) in a Huntington disease (HD) cell model. These findings reveal novel insights into HD molecular mechanisms and potential therapeutic targets.
Area of Science:
- Neurogenetics
- Molecular Biology
- RNA Biology
Background:
- Huntington disease (HD) is a neurogenetic disorder caused by CAG repeat expansion in the HTT gene, with underlying molecular mechanisms incompletely understood.
- Non-coding RNAs are implicated in HD pathophysiology, but the role of circular RNAs (circRNAs) remains unexplored.
Purpose of the Study:
- To identify differentially expressed circRNAs in a murine cell line model of Huntington disease.
- To elucidate the biological pathways regulated by these circRNAs in HD.
- To explore the circRNA-miRNA-mRNA regulatory network in HD.
Main Methods:
- CircRNA expression profiling using microarray analysis in a murine HD cell model.
- Prediction of microRNA (miRNA) binding sites on differentially expressed circRNAs.
- Identification of miRNA target genes and functional enrichment analysis.
Main Results:
- Identified 23 differentially expressed circRNAs, with 19 downregulated and 4 upregulated.
- Most downregulated circRNAs originated from the Rere gene.
- Enriched pathways included dopaminergic synapse, MAPK signaling, and long-term depression, all previously linked to HD.
Conclusions:
- This study is the first to analyze circRNAs in a Huntington disease model, revealing their differential expression.
- The identified circRNA-miRNA-mRNA network offers potential for novel biomarker discovery and therapeutic strategies for HD.
- Understanding circRNA roles provides new avenues for investigating HD molecular pathology.
Abstract:
Huntington disease (HD) is the most common neurogenetic disorder caused by expansion of the CAG repeat in the HTT gene; nevertheless, the molecular bases of the disease are not fully understood. Non-coding RNAs have demonstrated to be involved in the physiopathology of HD. However, the role of circRNAs has not been investigated. The aim of this study was to identify the circRNAs with differential expression in a murine cell line model of HD and to identify the biological pathways regulated by the differentially expressed circRNAs. CircRNA expression was analyzed through a microarray, which specifically detects circular species of RNA. The expression patterns between a murine cell line expressing mutant Huntingtin and cells expressing wild-type Huntingtin were compared. We predicted the miRNAs with binding sites for the differentially expressed circRNAs and the corresponding target genes for those miRNAs. Using the target genes, we performed a function enrichment analysis. We identified 23 circRNAs differentially expressed, 19 downregulated and four upregulated. Most of the downregulated circRNAs derive from the Rere gene. The dopaminergic synapse, MAPK, and long-term depression pathways were significantly enriched. The three identified pathways have been previously associated with the physiopathology of HD. The understanding of the circRNA-miRNA-mRNA network involved in the molecular mechanisms driving HD can lead us to identify novel biomarkers and potential therapeutic targets. To the best of our knowledge, this is the first study analyzing circRNAs in a model of Huntington disease.
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