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Epiblast diversification and blood formation in a human pregastrula

  • Zhenyu Xiao*
  • , Yandong Gong
  • , Xiaolong Yang
  • , Nannan He
  • , Xinyuan Wang
  • , Guoju You
  • , Hanlin Zhu
  • , Yingping Liang
  • , Xinwei Xie
  • , Baoqi Fang
  • , Gaoke Liu
  • , Bing Liu*
  • , Yu Lan*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • General Hospital of People's Liberation Army
  • Kunming University of Science and Technology
  • The First Affiliated Hospital of Zhengzhou University
  • Chinese Academy of Medical Sciences
  • Army Medical University
  • Tianjin Medical University
  • Tianjin Institutes of Health Science

Research output: Contribution to journalArticlepeer-review

Abstract

The incipient stage of gastrulation in human, when the primitive streak is about to emerge, represents a critical yet underexplored period. Here we present the high-resolution spatial transcriptomic landscape of a human embryo at Carnegie stage 6 (approximately 13–14 days post-conception), a stage at which primitive streak remains invisible and gastrulation-derived mesodermal/endodermal progenitors are not yet transcriptomically detected. We identified an anterior visceral endoderm-like hypoblast population, as well as a trifurcated developmental trajectory of the epiblast, progressing towards the amnion, primitive streak and node/prechordal plate/notochord (axial mesoderm) at subsequent developmental stages1, 2–3. Furthermore, our findings challenge the existing paradigms by revealing that primitive haematopoiesis, involving three blood lineages, initiates in human yolk sac before gastrulation, earlier than previously recognized2,4, 5, 6–7, and that the first blood cells arise from the extra-embryonic mesoderm with a hypoblast rather than epiblast origin. Notably, we identified two spatial zones, each consisting of molecularly distinct yolk sac endoderm and extra-embryonic mesoderm populations, that respectively facilitated the generation of erythro-megakaryocytic lineages and myeloid precursors. These findings provide insights into the onset of gastrulation and the earliest blood formation in humans, with profound implications for advancing stem cell-derived human embryo models and in vitro blood regeneration.

Original languageEnglish
JournalNature
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

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