Genetic control of cell fate decisions in the developing mouse embryo
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AI plain-English summaryA mouse embryo’s earliest cells commit to becoming heart, blood, or placenta under the control of two master regulator proteins, Eomes and Blimp1, and this project will map exactly how those decisions are made. This matters because developmental biology still lacks a complete wiring diagram for the transcriptional networks that turn a ball of identical cells into a structured embryo with distinct tissues. The gap is particularly acute for the brief window during gastrulation when cells first become restricted to specific fates, and for the maternal-fetal interface where Blimp1 operates. Without this map, we cannot understand how these processes go wrong in miscarriage or developmental disorders. The research is fundamental science. It will produce a detailed account of when and how Eomes directs progenitors toward the node, midline, and definitive endoderm, and how it primes hemogenic endothelium for primitive blood formation. It will also identify the upstream signals that switch Blimp1 on in the placenta and the downstream genes it represses. Past work on master regulators has revealed principles that later informed stem cell reprogramming and organoid culture; a deeper understanding of these networks could eventually guide efforts to generate specific cell types for regenerative medicine.
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