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FOXN1 is critical for onycholemmal terminal differentiation in nude (Foxn1) mice
Lars Mecklenburg1, Ralf Paus, Zdenek Halata
1Department of Dermatology, University Hospital Hamburg-Eppendorf, University of Hamburg, Hamburg, Germany.
Abstract:
Nude mice have a mutation in the transcription factor Foxn1(nu), resulting in downregulation of hair keratins. Although hair follicles develop normally, the hair fibers become structurally weak, curl, and break off at the surface. Nails in nude mice are deformed, based on alterations of the onychocyte differentiation process. Elemental microanalysis of the nail plate reveals marked decreases in sulfur concentrations in the nude mouse nail plates. Immunohistochemistry shows a lack of keratin 1 expression in terminally differentiating keratinocytes of the nail matrix. Instead, the typical differentiation process of the matrix is altered toward an epidermis-like differentiation pattern, comprising the production of filaggrin-containing keratohyalin granules in cells resembling those of the stratum granulosum, which are never observed in normally haired mice. The nail plate has diffuse basophilic stippling. It is thinner than normal, weak, and in most Foxn1(nu)/Foxn1(nu) mice breaks where it separates from the hyponychium. These studies indicate that the Foxn1(nu) mutated gene has effects beyond downregulating keratin expression, including changes in filaggrin expression, and is critical for normal onycholemmal differentiation. The nails of nude mice provide new insights into the molecular controls of onychocyte differentiation, and they offer a useful model to investigate the pathogenesis of nail hypergranulosis, a common feature in human nail diseases.
Insights
The Foxn1(nu) mutation in nude mice affects nail structure by altering onychocyte differentiation and reducing sulfur. This provides a model for studying human nail diseases like hypergranulosis.
Area of Science:
- Developmental biology
- Genetics
- Dermatology
Background:
- Nude mice possess a mutation in the Foxn1(nu) transcription factor, leading to reduced hair keratin expression.
- This mutation causes hair fibers to be structurally weak, curl, and break easily.
Purpose of the Study:
- To investigate the effects of the Foxn1(nu) mutation on nail structure and differentiation.
- To explore the molecular mechanisms underlying nail abnormalities in nude mice.
- To establish nude mice as a model for human nail diseases.
Main Methods:
- Elemental microanalysis of nail plates.
- Immunohistochemistry to detect keratin 1 and filaggrin expression.
- Microscopic examination of nail structure and differentiation.
Main Results:
- Nail plates in nude mice showed decreased sulfur concentration.
- Lack of keratin 1 expression in nail matrix keratinocytes.
- Altered onychocyte differentiation towards an epidermis-like pattern with filaggrin production.
- Nail plates were thinner, weaker, and prone to breakage.
Conclusions:
- The Foxn1(nu) mutation impacts onycholemmal differentiation beyond keratin downregulation, affecting filaggrin expression.
- Nude mouse nails offer insights into the molecular control of onychocyte differentiation.
- Nude mice serve as a valuable model for investigating nail hypergranulosis and other human nail disorders.

