Cell-Type-Specific Alternative Splicing Governs Cell Fate in the Developing Cerebral Cortex.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 27565344.
- Also identified by DOI 10.1016/j.cell.2016.07.025 and PMC identifier 5248659.
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Abstract
Alternative splicing is prevalent in the mammalian brain. To interrogate the functional role of alternative splicing in neural development, we analyzed purified neural progenitor cells (NPCs) and neurons from developing cerebral cortices, revealing hundreds of differentially spliced exons that preferentially alter key protein domains-especially in cytoskeletal proteins-and can harbor disease-causing mutations. We show that Ptbp1 and Rbfox proteins antagonistically govern the NPC-to-neuron transition by regulating neuron-specific exons. Whereas Ptbp1 maintains apical progenitors partly through suppressing a poison exon of Flna in NPCs, Rbfox proteins promote neuronal differentiation by switching Ninein from a centrosomal splice form in NPCs to a non-centrosomal isoform in neurons. We further uncover an intronic human mutation within a PTBP1-binding site that disrupts normal skipping of the FLNA poison exon in NPCs and causes a brain-specific malformation. Our study indicates that dynamic control of alternative splicing governs cell fate in cerebral cortical development.
Medical subject headings
- Alternative Splicing
- Cerebral Cortex
- Neural Stem Cells
- Neurogenesis
- Neurons