Continuous cell type diversification throughout the embryonic and postnatal mouse visual cortex development
Gao, Y.; van Velthoven, C. T. J.; Lee, C.; Thomas, E. D.; Bertagnolli, D.; Carey, D.; Casper, T.; Chakka, A. B.; Chakrabarty, R.; Clark, M.; Desierto, M. J.; Ferrer, R.; Gloe, J.; Goldy, J.; Guilford, N.; Guzman, J.; Halterman, C. R.; Hirschstein, D.; Ho, W.; James, K.; McCue, R.; Meyerdierks, E.; Nguy, B.; Pena, N.; Pham, T.; Shapovalova, N. V.; Sulc, J.; Torkelson, A.; Tran, A.; Tung, H.; Wang, J.; Ronellenfitch, K.; Levi, B.; Hawrylycz, M. J.; Pagan, C.; Dee, N.; Smith, K. A.; Tasic, B.; Yao, Z.; Zeng, H.
Show abstract
The mammalian cortex is composed of a highly diverse set of cell types and develops through a series of temporally regulated events that build out the cell type and circuit foundation for cortical function. The mechanisms underlying the development of different cell types remain elusive. Single-cell transcriptomics provides the capacity to systematically study cell types across the entire temporal range of cortical development. Here, we present a comprehensive and high-resolution transcriptomic and epigenomic cell type atlas of the developing mouse visual cortex. The atlas was built from a single-cell RNA-sequencing dataset of 568,674 high-quality single-cell transcriptomes and a single-nucleus Multiome dataset of 194,545 high-quality nuclei providing both transcriptomic and chromatin accessibility profiles, densely sampled throughout the embryonic and postnatal developmental stages from E11.5 to P56. We computationally reconstructed a transcriptomic developmental trajectory map of all excitatory, inhibitory, and non-neuronal cell types in the visual cortex, identifying branching points marking the emergence of new cell types at specific developmental ages and defining molecular signatures of cellular diversification. In addition to neurogenesis, gliogenesis and early postmitotic maturation in the embryonic stage which gives rise to all the cell classes and nearly all subclasses, we find that increasingly refined cell types emerge throughout the postnatal differentiation process, including the late emergence of many cell types during the eye-opening stage (P11-P14) and the onset of critical period (P21), suggesting continuous cell type diversification at different stages of cortical development. Throughout development, we find cooperative dynamic changes in gene expression and chromatin accessibility in specific cell types, identifying both chromatin peaks potentially regulating the expression of specific genes and transcription factors potentially regulating specific peaks. Furthermore, a single gene can be regulated by multiple peaks associated with different cell types and/or different developmental stages. Collectively, our study provides the most detailed dynamic molecular map directly associated with individual cell types and specific developmental events that reveals the molecular logic underlying the continuous refinement of cell type identities in the developing visual cortex.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- An epigenome atlas of neural progenitors within the embryonic mouse forebrain 99%
- Projection-TAGs enable multiplex projection tracing and multi-modal profiling of projection neurons 98%
- Impaired bidirectional communication between interneurons and oligodendrocyte precursor cells affects cognitive behavior 98%
Similar papers in this journal
- Single-cell epigenomic reconstruction of developmental trajectories in human neural organoid systems from pluripotency 98%
- An integrated single-nucleus and spatial transcriptomics atlas reveals the molecular landscape of the human hippocampus 98%
- A Meta-Atlas of the Developing Human Cortex Identifies Modules Driving Cell Subtype Specification 98%
Similar papers in this journal
Similar papers in this journal
- linc-mipep and linc-wrb encode micropeptides that regulate chromatin accessibility in vertebrate-specific neural cells 98%
- Interaction mapping of endoplasmic reticulum ubiquitin ligases identifies modulators of innate immune signalling 97%
- Layer 6 ensembles can selectively regulate the behavioral impact and layer-specific representation of sensory deviants 97%
"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.