3D epigenome of glial cell types in developing human cortex
- Ian R. Jones
- Li Wang
- Michael Kosicki
- Stephanie L. Battle
- Vivek JJ Narayan
- Qiuli Bi
- Kaila Gemenes
- Yuxi Liu
- Lingbo Zhou
- Mengyi Song
- Matthew White
- Wendy Olson
- Gabriel Beuchat
- Diane Dickel
- Yun Li
- Len A. Pennacchio
- R. David Hawkins
- Arnold Kriegstein
- Yin Shen
2026-09-02
The human cortex is complex and heterogeneous, undergoing extensive expansion during development 1,2 . Our prior study of neurogenesis, including radial glia (RG), intermediate progenitor cells, excitatory neurons and interneurons demonstrated that chromatin looping underlies transcriptional regulation for lineage-specific genes, shedding light on how non-coding genetic variants contribute to neuropsychiatric disorders by means of cell-type-specific gene regulation 3 . RG have a crucial role in generating cellular diversity through both neurogenesis and gliogenesis and can be further classified into ventricular RG (vRG) and outer RG (oRG) 4,5 . Given their significance in cortical development, we conducted a comprehensive three-dimensional (3D) epigenomic analysis of four main glial populations, including vRG, oRG, oligodendrocyte precursor cells and microglia, from the mid-gestational human neocortex. By integrating gene expression, chromatin accessibility, DNA methylation and 3D chromatin interactions, we identified cell-type-specific candidate cis -regulatory elements (cCREs) and validated their regulatory function using transgenic mouse embryos. Using machine learning, we prioritized 112 schizophrenia risk variants within glia cCREs and further confirmed the predicted vRG enhancer disruption by the rs4449074 risk allele in vivo. Finally, oRG cCREs are enriched for human accelerated regions compared with other cCREs and a subset of human accelerated regions show activity differences from their chimpanzee orthologues that interact with genes involved in neuronal development. Our findings advance the understanding of human-specific gene regulation during corticogenesis.