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January 14, 2026Nature Communications3 citationsOpen Access

Integrated multi-omic atlas reveals the hierarchy of spatiotemporal regulatory networks of mouse gastrulation

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XYXianfa YangBXBingbing XiePSPenglei Shen

Key Points

  • This research aims to elucidate the regulatory networks guiding cell fate during mouse gastrulation.
  • Created a multi-omic dataset of gastrulating mouse embryos
  • Constructed a hierarchical gene regulatory landscape
  • Integrated spatial transcriptomics to dissect regulatory networks
  • Analyzed temporal dynamics of signaling and transcription factors
  • Identified critical spatiotemporal regulatory networks involved in gastrulation
  • Outlined the multi-omic basis for left-right symmetry breaking
  • Revealed the role of transcription factors in chromatin opening and signaling responsiveness
  • Established a regulatory framework for mammalian embryogenesis

Abstract

Spatiotemporal coordination of cellular and molecular events is crucial for cell fate commitment during mouse gastrulation. However, the high-precision mechanisms governing the timing and spatial dynamics remain poorly understood. Here, we present a time-series single-cell multi-omic dataset of the gastrulating mouse embryos and construct a hierarchical gene regulatory landscape. Integrating this with real three-dimensional transcriptomic coordinate, we created ST-MAGIC and ST-MAGIC (+) atlas, dissecting the spatiotemporal logics of regulatory networks and signaling responsiveness underpinning the lineage commitment at gastrulation. Specifically, we delineated the multi-omic basis for left-right symmetry breaking events in the gastrula and also revealed the spatiotemporal molecular relay for axial mesendoderm lineage, where early and intermediate transcription factors first open the chromatin regions and setup the responsiveness to signaling, followed by terminal factors to consolidate the transcriptomic architecture. In summary, our study presents a spatiotemporal regulatory logic framework of mouse gastrulation for advancing our understanding of mammalian embryogenesis.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6966f5183603a7c209c0e0echttps://doi.org/10.1038/s41467-026-68291-w
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