Comparative single-cell regulome reveals evolutionary innovations in neural progenitor cells during primate corticogenesis
Liu, Y.; Luo, X.; Sun, Y.; Chen, K.; Hu, T.; You, B.; Xu, J.; Zhang, F.; Meng, X.; Li, X.; He, X.; Li, C.; Su, B.
Show abstract
The cellular and genetic mechanism underlying the human-specific features of cortex development remains unclear. We generated a cell-type resolved atlas of transcriptome and regulome of the developing macaque and mouse prefrontal cortex, and conducted evolutionary analyses with the published complementary human data. We discovered a primate-specific expansion of two neural progenitor subclasses, glia-committed radial glia (RG) and truncated RG. Specifically, the human neural progenitors show extensive transcriptional rewiring in the growth factor and extracellular matrix pathways. Expression of the human-specific progenitor marker ITGA2 in the cortex of fetal mouse promotes progenitor proliferation and an increased upper-layer neuron proportion. We demonstrate that these transcriptional divergences are primarily driven by the activity changes of the distal regulatory elements in the genome. Markedly, the chromatin regions with human-gained accessibility enrich the human-fixed sequence changes, as well as sequence polymorphisms associated with intelligence and neuropsychiatric disorders. Our results uncover evolutionary innovations in neural progenitors and gene regulatory mechanism during primate cortex evolution.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Multi-omic profiling of the developing human cerebral cortex at the single cell level 98%
- Primate-restricted KRAB zinc finger proteins and target retrotransposons control gene expression in human neurons 96%
- Lineage hierarchies and stochasticity ensure the long-term maintenance of adult neural stem cells 96%
Similar papers in this journal
Similar papers in this journal
- Parallel RNA and DNA analysis after Deep-sequencing (PRDD-seq) reveals cell type-specific lineage patterns in human brain 97%
- Evolution of regulatory signatures in primate cortical neurons at cell type resolution 97%
- Evolutionary and Developmental Specialization of Foveal Cell Types in the Marmoset 96%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.