Related Experiment Video
Updated: Jul 3, 2025

Author Spotlight: A Pipeline to Analyze Lineage-Specific Mutant Embryos at Single-Cell Resolution
Published on: June 14, 2024
A single-cell time-lapse of mouse prenatal development from gastrula to birth
Chengxiang Qiu1, Beth K Martin2, Ian C Welsh3
1Department of Genome Sciences, University of Washington, Seattle, WA, USA. cxqiu@uw.edu.
Abstract:
The house mouse (Mus musculus) is an exceptional model system, combining genetic tractability with close evolutionary affinity to humans1,2. Mouse gestation lasts only 3 weeks, during which the genome orchestrates the astonishing transformation of a single-cell zygote into a free-living pup composed of more than 500 million cells. Here, to establish a global framework for exploring mammalian development, we applied optimized single-cell combinatorial indexing3 to profile the transcriptional states of 12.4 million nuclei from 83 embryos, precisely staged at 2- to 6-hour intervals spanning late gastrulation (embryonic day 8) to birth (postnatal day 0). From these data, we annotate hundreds of cell types and explore the ontogenesis of the posterior embryo during somitogenesis and of kidney, mesenchyme, retina and early neurons. We leverage the temporal resolution and sampling depth of these whole-embryo snapshots, together with published data4-8 from earlier timepoints, to construct a rooted tree of cell-type relationships that spans the entirety of prenatal development, from zygote to birth. Throughout this tree, we systematically nominate genes encoding transcription factors and other proteins as candidate drivers of the in vivo differentiation of hundreds of cell types. Remarkably, the most marked temporal shifts in cell states are observed within one hour of birth and presumably underlie the massive physiological adaptations that must accompany the successful transition of a mammalian fetus to life outside the womb.
Insights
Researchers mapped 12.4 million mouse cells to create a developmental map from zygote to birth. This framework identifies key genes driving cell differentiation and reveals rapid changes near birth for fetal adaptation.
Area of Science:
- Developmental Biology
- Genomics
- Mammalian Embryogenesis
Background:
- The house mouse (Mus musculus) is a valuable model for human development due to genetic similarity.
- Mammalian development involves complex genomic orchestration from a single cell to millions.
Purpose of the Study:
- To establish a comprehensive framework for studying mammalian development.
- To profile transcriptional states across a wide range of embryonic and fetal stages.
Main Methods:
- Applied optimized single-cell combinatorial indexing to profile 12.4 million nuclei from 83 precisely staged mouse embryos.
- Integrated data from embryonic day 8 to postnatal day 0 with earlier timepoint data.
Main Results:
- Annotated hundreds of cell types and detailed the ontogenesis of specific tissues (kidney, retina, neurons) and embryonic regions.
- Constructed a rooted tree of cell-type relationships spanning prenatal development.
- Identified candidate genes (transcription factors, proteins) driving cell differentiation.
- Observed significant cell state shifts within one hour of birth, linked to physiological adaptation.
Conclusions:
- The study provides a high-resolution map of mouse prenatal development, offering insights into cell-type relationships and differentiation drivers.
- The findings highlight the critical cellular events occurring around birth for successful transition to extrauterine life.

