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.

Nature
|February 14, 2024
PubMed

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.