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Published on: April 19, 2018
The circular RNA circNFIX regulates MEF2C expression in muscle satellite cells in spastic cerebral palsy
Brigette Romero1, Parsa Hoque1, Karyn G Robinson2
1Department of Medical and Molecular Sciences, University of Delaware, Newark, Delaware, USA.
Insights
Reduced circular RNA NFIX (circNFIX) in cerebral palsy (CP) impairs muscle development by decreasing MEF2C expression. This finding suggests circNFIX as a potential biomarker for early CP diagnosis and a therapeutic target.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Cerebral palsy (CP) is a pediatric disorder with unclear molecular mechanisms, hindering early diagnosis.
- Circular RNAs (circRNAs) are emerging biomarkers, but their role in CP is largely unknown.
- Myocyte-specific enhancer factor 2C (MEF2C) is crucial for sarcomere development.
Purpose of the Study:
- To investigate the role of circNFIX in cerebral palsy.
- To elucidate the regulatory mechanism of circNFIX on MEF2C expression.
- To explore circNFIX as a potential biomarker for CP.
Main Methods:
- Quantification of circNFIX and MEF2C expression in CP patient muscle cells and tissues.
- Single-molecule resolution imaging to determine circNFIX subcellular localization.
- Bioinformatic analysis and experimental validation to confirm circNFIX-miRNA interactions.
- Myoblast differentiation and fusion assays, including circNFIX knockdown experiments.
Main Results:
- circNFIX is significantly downregulated in muscle cells and skeletal muscle tissue of individuals with CP.
- circNFIX acts as a molecular sponge for miR373-3p, preventing it from repressing MEF2C translation.
- Reduced circNFIX in CP leads to decreased MEF2C expression and subsequent downregulation of sarcomere genes.
- circNFIX knockdown impairs myoblast differentiation and fusion, mimicking CP cellular phenotypes.
Conclusions:
- Downregulation of circNFIX contributes to impaired sarcomere development in CP by increasing miR373-3p-mediated MEF2C repression.
- circNFIX plays a critical role in maintaining myogenic capacity and sarcomere integrity.
- circNFIX represents a promising therapeutic target and a potential biomarker for early diagnosis of cerebral palsy.
Abstract:
Cerebral palsy (CP) is a pediatric onset disorder with poorly understood molecular causes and progression, making early diagnosis difficult. Circular RNAs are regulatory RNAs that show promise as biomarkers in various diseases but the role of circular RNAs in CP is beginning to be understood. This study identified the role of circNFIX in regulating the expression of myocyte-specific enhancer factor 2C (MEF2C), an important transcription factor for sarcomere development. We found that circNFIX is downregulated in the muscle cells of individuals with CP, and its localization shifts toward the nucleus as visualized using single-molecule resolution imaging. The decreased expression of circNFIX, MEF2C, and MEF2C targets persisted throughout myoblasts to myotubes differentiation, and in the skeletal muscle tissue. Bioinformatic and experimental validation confirmed that circNFIX acts as a sponge for miR373-3p, a microRNA that represses MEF2C translation. In normal muscle, circNFIX derepresses MEF2C translation by sponging miR373-3p, allowing for normal sarcomere generation. In CP, reduced circNFIX expression results in loss of miRNA sponging, leading to lower MEF2C expression and downregulation of sarcomere genes, potentially causing shortened and dysfunctional muscle fibers. Knockdown (KD) of circNFIX reduced myogenic capacity of myoblasts to fuse and form myotubes similar to CP cells evident from the lower fusion index in CP and KD as compared to control myotubes. This is the first study reporting reduction of MEF2C in CP and single-molecule resolution imaging of circNFIX's subcellular distribution and its role in CP, suggesting circNFIX as a potential therapeutic target and biomarker for early CP diagnosis.
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