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Published on: August 10, 2018
Flunarizine changes microRNA expression in cell cultures and in a mouse model of spinal muscular atrophy
Emeline Bon1, Perrine Delers1, Florent Dumont2,3
1Université Paris Cité, Inserm, HealthFex, 75006, Paris, France.
Abstract:
Spinal muscular atrophy (SMA) is caused by mutations in the Survival Motor Neuron 1 (SMN1) gene, leading to reduced SMN protein levels and widespread disruption in RNA metabolism. Despite of disease-modifying therapies, which remarkably improve patient outcomes, the long-term effects remain unknown. Dysregulated small non-coding RNAs, including microRNAs, have been reported in SMA, but their contribution to the disease remains unclear. We previously showed that flunarizine could improve the phenotype of an SMA mouse model; however its mode of action is incomplete. Here, we showed that flunarizine modulates the expression of numerous microRNAs. Using small-RNA sequencing of a flunarizine-treated SMA patient fibroblast cell line, we identified several microRNAs, which are also dysregulated in the brains and/or spinal cords of SMA mouse models at early disease stages and corrected with flunarizine. Transfection of the miR-128-3p inhibitor interferes with the flunarizine-induced neurite outgrowth in the murine neuronal NSC34 cells. Among the mRNAs modulated by flunarizine, homeodomain interacting protein kinase 2 (Hipk2) transcripts were revealed as novel miR-128-3p targets using either the mimic or its inhibitor. Our findings suggest that an early microRNA accumulation in spinal cords of SMA models can contribute to molecular dysfunctions and may represent an initiating event in pathogenesis.
Insights
Flunarizine treatment impacts microRNA expression in spinal muscular atrophy (SMA). Early microRNA changes in SMA models may initiate disease pathogenesis, offering new therapeutic targets.
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- Spinal muscular atrophy (SMA) results from SMN1 gene mutations, causing motor neuron loss and RNA metabolism disruption.
- Current therapies improve outcomes, but long-term effects and disease mechanisms require further investigation.
- MicroRNAs are implicated in SMA, yet their precise role remains unclear.
Purpose of the Study:
- To investigate the mode of action of flunarizine in SMA.
- To identify microRNAs dysregulated in SMA and modulated by flunarizine.
- To explore the role of specific microRNAs in SMA pathogenesis.
Main Methods:
- Small-RNA sequencing on flunarizine-treated SMA patient fibroblasts.
- Analysis of microRNA expression in SMA mouse models.
- Neurite outgrowth assays in murine neuronal cells.
- Validation of microRNA targets using mimics and inhibitors.
Main Results:
- Flunarizine modulates numerous microRNAs, including miR-128-3p.
- Several dysregulated microRNAs in SMA models are corrected by flunarizine.
- miR-128-3p inhibition counteracts flunarizine-induced neurite outgrowth.
- Hipk2 mRNA is identified as a novel target of miR-128-3p.
Conclusions:
- Early microRNA dysregulation in SMA spinal cords may contribute to molecular dysfunction and disease initiation.
- Flunarizine's effects involve modulation of specific microRNAs.
- Targeting microRNAs like miR-128-3p could be a therapeutic strategy for SMA.
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