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Updated: Aug 15, 2026

Rapid Genetic Analysis of Epithelial-Mesenchymal Signaling During Hair Regeneration
Published on: February 28, 2013
WNT signaling in the control of hair growth and structure
S E Millar1, K Willert, P C Salinas
1Howard Hughes Medical Institute, Stanford University, Stanford, California, 94305-5428, USA. millars@mail.med.upenn.edu
Abstract:
Characterization of the molecular pathways controlling differentiation and proliferation in mammalian hair follicles is central to our understanding of the regulation of normal hair growth, the basis of hereditary hair loss diseases, and the origin of follicle-based tumors. We demonstrate that the proto-oncogene Wnt3, which encodes a secreted paracrine signaling molecule, is expressed in developing and mature hair follicles and that its overexpression in transgenic mouse skin causes a short-hair phenotype due to altered differentiation of hair shaft precursor cells, and cyclical balding resulting from hair shaft structural defects and associated with an abnormal profile of protein expression in the hair shaft. A putative effector molecule for WNT3 signaling, the cytoplasmic protein Dishevelled 2 (DVL2), is normally present at high levels in a subset of cells in the outer root sheath and in precursor cells of the hair shaft cortex and cuticle which lie immediately adjacent to Wnt3-expressing cells. Overexpression of Dvl2 in the outer root sheath mimics the short-hair phenotype produced by overexpression of Wnt3, supporting the hypothesis that Wnt3 and Dvl2 have the potential to act in the same pathway in the regulation of hair growth. These experiments demonstrate a previously unrecognized role for WNT signaling in the control of hair growth and structure, as well as presenting the first example of a mammalian phenotype resulting from overexpression of a Dvl gene and providing an accessible in vivo system for analysis of mammalian WNT signaling pathways.
Insights
Wnt3 signaling regulates hair growth and structure. Overexpressing Wnt3 or Dishevelled 2 (DVL2) in mice causes hair defects, revealing a new role for WNT pathways in hair biology.
Area of Science:
- Molecular biology
- Developmental biology
- Mammalian genetics
Background:
- Understanding hair follicle regulation is key for hair growth, hair loss diseases, and tumors.
- Wnt signaling pathways are crucial in embryonic development and cell communication.
Purpose of the Study:
- To investigate the role of Wnt3 and Dishevelled 2 (DVL2) in mammalian hair follicle development and growth.
- To characterize the molecular mechanisms underlying WNT signaling in hair shaft formation.
Main Methods:
- Utilized transgenic mouse models to overexpress Wnt3 and DVL2 in skin.
- Analyzed hair phenotypes, including hair length, structure, and cyclical balding.
- Examined protein expression profiles in the hair shaft.
Main Results:
- Wnt3 overexpression in mouse skin led to a short-hair phenotype and cyclical balding.
- Hair shaft structural defects and altered protein expression were observed.
- DVL2 overexpression mimicked the Wnt3 overexpression phenotype, supporting their role in the same pathway.
Conclusions:
- WNT signaling, specifically involving Wnt3 and DVL2, plays a significant role in regulating hair growth and structure.
- This study provides the first mammalian phenotype resulting from Dvl gene overexpression.
- Establishes an in vivo system for studying mammalian WNT signaling pathways in hair growth.
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