Related Experiment Video
Updated: May 20, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Wnt5a can both activate and repress Wnt/β-catenin signaling during mouse embryonic development
Renée van Amerongen1, Christophe Fuerer, Makiko Mizutani
1Department of Developmental Biology and Howard Hughes Medical Institute, Lorry I. Lokey Stem Cell Research Building, Stanford University, Stanford, CA 94305, USA. r.v.amerongen@nki.nl
Abstract:
Embryonic development is controlled by a small set of signal transduction pathways, with vastly different phenotypic outcomes depending on the time and place of their recruitment. How the same molecular machinery can elicit such specific and distinct responses, remains one of the outstanding questions in developmental biology. Part of the answer may lie in the high inherent genetic complexity of these signaling cascades, as observed for the Wnt-pathway. The mammalian genome encodes multiple Wnt proteins and receptors, each of which show dynamic and tightly controlled expression patterns in the embryo. Yet how these components interact in the context of the whole organism remains unknown. Here we report the generation of a novel, inducible transgenic mouse model that allows spatiotemporal control over the expression of Wnt5a, a protein implicated in many developmental processes and multiple Wnt-signaling responses. We show that ectopic Wnt5a expression from E10.5 onwards results in a variety of developmental defects, including loss of hair follicles and reduced bone formation in the skull. Moreover, we find that Wnt5a can have dual signaling activities during mouse embryonic development. Specifically, Wnt5a is capable of both inducing and repressing β-catenin/TCF signaling in vivo, depending on the time and site of expression and the receptors expressed by receiving cells. These experiments show for the first time that a single mammalian Wnt protein can have multiple signaling activities in vivo, thereby furthering our understanding of how signaling specificity is achieved in a complex developmental context.
Insights
This study reveals Wnt5a
Area of Science:
- Developmental biology
- Molecular biology
- Genetics
Background:
- Embryonic development relies on signal transduction pathways like Wnt signaling.
- The Wnt pathway's complexity, involving multiple Wnt proteins and receptors, contributes to diverse developmental outcomes.
- Understanding how Wnt components interact in vivo is crucial for developmental biology.
Purpose of the Study:
- To investigate the spatiotemporal control of Wnt5a expression during mouse embryonic development.
- To elucidate the dual signaling activities of Wnt5a in vivo.
- To understand how signaling specificity is achieved within complex developmental contexts.
Main Methods:
- Generation of a novel, inducible transgenic mouse model for spatiotemporal Wnt5a expression control.
- Analysis of developmental defects resulting from ectopic Wnt5a expression.
- In vivo assessment of Wnt5a's impact on β-catenin/TCF signaling.
Main Results:
- Ectopic Wnt5a expression from embryonic day 10.5 caused developmental defects, including hair follicle loss and reduced skull bone formation.
- Wnt5a demonstrated dual signaling activities, capable of both inducing and repressing β-catenin/TCF signaling.
- The signaling outcome of Wnt5a depended on the timing, location, and receptor expression of receiving cells.
Conclusions:
- A single mammalian Wnt protein (Wnt5a) can exhibit multiple signaling activities in vivo.
- This finding advances the understanding of how signaling specificity is achieved during embryonic development.
- The study provides insights into the complex regulatory mechanisms governing Wnt signaling in vivo.
Related Concept Videos
Non-Canonical Wnt Signaling Pathways
Non-Canonical Wnt Signaling Pathways
Canonical Wnt Signaling Pathway
Canonical Wnt Signaling Pathway
Catenins
Catenins in Cell Junctions
Catenins bind to cell adhesion molecules such as cadherins and link them to different cytoskeletal proteins depending on the type of cell junction. At the adherens...
Hedgehog Signaling Pathway
