SRF transcriptionally regulates the oligodendrocyte cytoskeleton during CNS myelination.
Tal IramMiguel A GarciaJérémy AmandAchint KaurMicaiah AtkinsManasi IyerMable LamNicholas AmbielDanielle M JorgensAndreas KellerTony Wyss-CorayFabian KernJ Bradley ZucheroPublished in: Proceedings of the National Academy of Sciences of the United States of America (2024)
Myelination of neuronal axons is essential for nervous system development. Myelination requires dramatic cytoskeletal dynamics in oligodendrocytes, but how actin is regulated during myelination is poorly understood. We recently identified serum response factor (SRF)-a transcription factor known to regulate expression of actin and actin regulators in other cell types-as a critical driver of myelination in the aged brain. Yet, a major gap remains in understanding the mechanistic role of SRF in oligodendrocyte lineage cells. Here, we show that SRF is required cell autonomously in oligodendrocytes for myelination during development. Combining ChIP-seq with RNA-seq identifies SRF-target genes in oligodendrocyte precursor cells and oligodendrocytes that include actin and other key cytoskeletal genes. Accordingly, SRF knockout oligodendrocytes exhibit dramatically reduced actin filament levels early in differentiation, consistent with its role in actin-dependent myelin sheath initiation. Surprisingly, oligodendrocyte-restricted loss of SRF results in upregulation of gene signatures associated with aging and neurodegenerative diseases. Together, our findings identify SRF as a transcriptional regulator that controls the expression of cytoskeletal genes required in oligodendrocytes for myelination. This study identifies an essential pathway regulating oligodendrocyte biology with high relevance to brain development, aging, and disease.
Keyphrases
- genome wide
- single cell
- transcription factor
- rna seq
- genome wide identification
- poor prognosis
- cell migration
- dna methylation
- induced apoptosis
- white matter
- cell cycle arrest
- high throughput
- cell therapy
- cell death
- gene expression
- copy number
- cell proliferation
- blood brain barrier
- long non coding rna
- binding protein
- resting state
- brain injury
- cerebral ischemia
- mesenchymal stem cells
- heat shock