| Literature DB >> 27419872 |
Kyle M Loh1, Angela Chen1, Pang Wei Koh2, Tianda Z Deng1, Rahul Sinha1, Jonathan M Tsai1, Amira A Barkal1, Kimberle Y Shen1, Rajan Jain3, Rachel M Morganti1, Ng Shyh-Chang4, Nathaniel B Fernhoff1, Benson M George1, Gerlinde Wernig5, Rachel E A Salomon1, Zhenghao Chen1, Hannes Vogel5, Jonathan A Epstein3, Anshul Kundaje2, William S Talbot1, Philip A Beachy6, Lay Teng Ang7, Irving L Weissman8.
Abstract
Stem-cell differentiation to desired lineages requires navigating alternating developmental paths that often lead to unwanted cell types. Hence, comprehensive developmental roadmaps are crucial to channel stem-cell differentiation toward desired fates. To this end, here, we map bifurcating lineage choices leading from pluripotency to 12 human mesodermal lineages, including bone, muscle, and heart. We defined the extrinsic signals controlling each binary lineage decision, enabling us to logically block differentiation toward unwanted fates and rapidly steer pluripotent stem cells toward 80%-99% pure human mesodermal lineages at most branchpoints. This strategy enabled the generation of human bone and heart progenitors that could engraft in respective in vivo models. Mapping stepwise chromatin and single-cell gene expression changes in mesoderm development uncovered somite segmentation, a previously unobservable human embryonic event transiently marked by HOPX expression. Collectively, this roadmap enables navigation of mesodermal development to produce transplantable human tissue progenitors and uncover developmental processes. VIDEO ABSTRACT.Entities:
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Year: 2016 PMID: 27419872 PMCID: PMC5474394 DOI: 10.1016/j.cell.2016.06.011
Source DB: PubMed Journal: Cell ISSN: 0092-8674 Impact factor: 41.582