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Published on: July 19, 2019
MicroRNA-deficient Schwann cells display congenital hypomyelination
Beth Yun1, Angela Anderegg, Daniela Menichella
1Department of Neurology, Northwestern University Feinberg School of Medicine, Chicago, Illinois 60611, USA.
Abstract:
MicroRNAs, by modulating gene expression, have been implicated as regulators of various cellular and physiological processes, including differentiation, proliferation, and cancer. Here, we study the role of microRNAs in Schwann cell (SC) differentiation by conditional removal of the microRNA processing enzyme Dicer1. We reveal that both male and female mice lacking Dicer1 in SC (Dicer1 conditional knock-outs) display a severe neurological phenotype resembling congenital hypomyelination. Ultrastructural analyses show that many SC lacking Dicer1 are stalled in differentiation at the promyelinating state and fail to myelinate axons. Gene expression analyses reveal a failure to extinguish genes characteristic of the undifferentiated state such as Sox2, Jun, and Ccnd1. Sox2 and Jun are well characterized negative regulators of SC differentiation. Consistent with Sox2/Jun maintenance, Egr2, a master regulator of the myelinating program, is drastically downregulated and likely accounts for the myelination defect. We posit a model wherein microRNAs are critical for downregulation of antecedent programs of gene expression. In SC differentiation, this is particularly relevant in the key developmental transition from a promyelinating to myelinating SC.
Insights
MicroRNAs are crucial for Schwann cell (SC) differentiation. Their absence stalls SC development, preventing proper myelination and causing neurological defects in mice.
Area of Science:
- Neuroscience
- Molecular Biology
- Developmental Biology
Background:
- MicroRNAs regulate gene expression, impacting cellular processes like differentiation and cancer.
- Schwann cells (SCs) are vital for peripheral nerve myelination.
- Understanding SC differentiation is key to addressing neurological disorders.
Purpose of the Study:
- To investigate the role of microRNAs in Schwann cell differentiation.
- To determine the function of the microRNA processing enzyme Dicer1 in SCs.
Main Methods:
- Conditional knockout of Dicer1 in mouse Schwann cells.
- Neurological phenotype assessment and ultrastructural analysis.
- Gene expression profiling.
Main Results:
- Dicer1-deficient SCs exhibit a congenital hypomyelination phenotype.
- SCs lacking Dicer1 are arrested in the promyelinating state, failing to myelinate axons.
- Key differentiation genes (e.g., Egr2) are downregulated, while undifferentiated genes (e.g., Sox2, Jun) persist.
Conclusions:
- MicroRNAs are essential for timely downregulation of developmental gene programs during SC differentiation.
- This study reveals a critical role for microRNAs in the transition from promyelinating to myelinating Schwann cells.
- Dysregulation of microRNA processing in SCs leads to severe myelination defects.
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