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Timing is everything: Reiterative Wnt, BMP and RA signaling regulate developmental competence during endoderm
Scott A Rankin1, Kyle W McCracken1, David M Luedeke1
1Center for Stem Cell&Organoid Medicine (CuSTOM), Perinatal Institute, Divisions of Developmental Biology the Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, OH 45229, USA.
Abstract:
A small number of signaling pathways are used repeatedly during organogenesis, and they can have drastically different effects on the same population of cells depending on the embryonic stage. How cellular competence changes over developmental time is not well understood. Here we used Xenopus, mouse, and human pluripotent stem cells to investigate how the temporal sequence of Wnt, BMP, and retinoic acid (RA) signals regulates endoderm developmental competence and organ induction, focusing on respiratory fate. While Nkx2-1+ lung fate is not induced until late somitogenesis stages, here we show that lung competence is restricted by the gastrula stage as a result of Wnt and BMP-dependent anterior-posterior (A-P) patterning. These early Wnt and BMP signals make posterior endoderm refractory to subsequent RA/Wnt/BMP-dependent lung induction. We further mapped how RA modulates the response to Wnt and BMP in a temporal specific manner. In the gastrula RA promotes posterior identity, however in early somite stages of development RA regulates respiratory versus pharyngeal potential in anterior endoderm and midgut versus hindgut potential in posterior endoderm. Together our data suggest a dynamic and conserved response of vertebrate endoderm during organogenesis, wherein early Wnt/BMP/RA impacts how cells respond to later Wnt/BMP/RA signals, illustrating how reiterative combinatorial signaling can regulate both developmental competence and subsequent fate specification.
Insights
Early Wnt and BMP signals during gastrulation restrict lung developmental competence in vertebrate endoderm. Subsequent retinoic acid (RA) signaling then refines respiratory and gut fates based on this early patterning.
Area of Science:
- Developmental Biology
- Stem Cell Biology
- Molecular Embryology
Background:
- Organogenesis relies on conserved signaling pathways with stage-dependent effects.
- Understanding how cellular competence changes during development is crucial but poorly understood.
Purpose of the Study:
- Investigate the temporal regulation of endoderm developmental competence and organ induction, specifically respiratory fate.
- Examine the roles of Wnt, BMP, and retinoic acid (RA) signaling sequences in regulating these processes.
Main Methods:
- Utilized Xenopus, mouse, and human pluripotent stem cells.
- Analyzed the temporal sequence of Wnt, BMP, and RA signaling.
- Mapped the modulation of Wnt and BMP responses by RA across developmental stages.
Main Results:
- Lung developmental competence is established by the gastrula stage, influenced by Wnt/BMP anterior-posterior patterning.
- Early Wnt/BMP signaling renders posterior endoderm unresponsive to later lung induction cues.
- Retinoic acid (RA) exhibits temporal specificity, influencing posterior identity in gastrula and refining respiratory/gut fates in later stages.
Conclusions:
- Vertebrate endoderm exhibits a dynamic and conserved response to reiterative signaling during organogenesis.
- Early signaling events (Wnt/BMP/RA) critically dictate cellular responses to subsequent signals, regulating both competence and fate specification.
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