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Updated: Oct 8, 2026

Single-Cell RNA Sequencing of Mutant Whole Mouse Embryos: From the Epiblast to the End of Gastrulation
Published on: June 14, 2024
Spatially resolved genome architecture in mouse embryonic development
Yuang Ma1, Bo Gou1, Yuetong Xu2
1Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology (IGDB), Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
Higher-order chromatin structure is linked to cell differentiation and aging, but its native distribution in tissues and role in organismal development remain unclear. Here, we introduce SpaceA, a spatial omics approach for in situ chromatin architecture profiling. Compared with high-throughput chromosome conformation Capture (Hi-C), SpaceA captures substantially more contacts over distances beyond 10 Mb, thereby enhancing detection of higher-order chromatin dynamics. Applied to nine mouse embryonic sections, compartment A/B identity varies spatiotemporally across native tissue environments and undergoes a dramatic shift between E12.5 and E13.5 stages, coinciding with robust transcriptional transitions but not with marked histone modification changes. Furthermore, unlike the prevalent intra-compartment interaction paradigm, the embryonic liver exhibits a distinct, enhanced chromatin condensation between compartments accompanying expression suppression, as validated by microscopy imaging and heterochromatin adhesion feature extraction. Our study establishes a platform for dissecting how tissue-spatial chromatin heterogeneity, particularly via long-range interactions, orchestrates complex biological processes in multicellular organisms.
