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A multi-omic atlas of human embryonic skeletal development

Title: A multi-omic atlas of human embryonic skeletal development
Authors: To K; Fei L; Pett JP; Roberts K; Blain R; Polanski K; Li T; Yayon N; He P; Xu C; Cranley J; Moy M; Li R; Kanemaru K; Huang N; Megas S; Richardson L; Kapuge R; Perera S; Tuck E; Wilbrey-Clark A; Mulas I; Memi F; Cakir B; Predeus AV; Horsfall D; Murray S; Prete M; Mazin P; He X; Meyer KB; Haniffa M; Barker RA; Bayraktar O; Chedotal A; Buckley CD; Teichmann SA
Source: Nature, 21 November 2024
Publisher Information: Nature Research
Publication Year: 2024
Collection: Newcastle University Library ePrints Service
Description: © The Author(s) 2024.Human embryonic bone and joint formation is determined by coordinated differentiation of progenitors in the nascent skeleton. The cell states, epigenetic processes and key regulatory factors that underlie lineage commitment of these cells remain elusive. Here we applied paired transcriptional and epigenetic profiling of approximately 336,000 nucleus droplets and spatial transcriptomics to establish a multi-omic atlas of human embryonic joint and cranium development between 5 and 11 weeks after conception. Using combined modelling of transcriptional and epigenetic data, we characterized regionally distinct limb and cranial osteoprogenitor trajectories across the embryonic skeleton and further described regulatory networks that govern intramembranous and endochondral ossification. Spatial localization of cell clusters in our in situ sequencing data using a new tool, ISS-Patcher, revealed mechanisms of progenitor zonation during bone and joint formation. Through trajectory analysis, we predicted potential non-canonical cellular origins for human chondrocytes from Schwann cells. We also introduce SNP2Cell, a tool to link cell-type-specific regulatory networks to polygenic traits such as osteoarthritis. Using osteolineage trajectories characterized here, we simulated in silico perturbations of genes that cause monogenic craniosynostosis and implicate potential cell states and disease mechanisms. This work forms a detailed and dynamic regulatory atlas of bone and cartilage maturation and advances our fundamental understanding of cell-fate determination in human skeletal development.
Document Type: article in journal/newspaper
File Description: application/pdf
Language: unknown
Relation: https://eprints.ncl.ac.uk/302759; https://eprints.ncl.ac.uk/fulltext.aspx?url=302759/1882645D-47E2-4882-883E-85D9EB0FCE91.pdf&pub_id=302759
Availability: https://eprints.ncl.ac.uk/302759
Rights: https://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.39CBAF2F
Database: BASE