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Updated: May 16, 2026

Cell Population Analyses During Skin Carcinogenesis
Published on: August 21, 2013
Unimpaired skin carcinogenesis in Desmoglein 3 knockout mice
Sylvain Baron1, Anabel Hoang, Hannes Vogel
1Division of Radiation and Cancer Biology, Department of Radiation Oncology, Stanford University School of Medicine, Stanford, California, United States of America.
Abstract:
The contribution of adherens junction inactivation, typically by downregulation or mutation of the transmembrane core component E-cadherin, to cancer progression is well recognized. In contrast, the role of the desmosomal cadherin components of the related cell-cell adhesion junction, the desmosome, in cancer development has not been well explored. Here, we use mouse models to probe the functional role of desmosomal cadherins in carcinogenesis. Because mice lacking the desmosomal cadherin Desmoglein 3 (Dsg3) have revealed a crucial role for Dsg3 in cell-cell adhesion in stratified epithelia, we investigate the consequence of Dsg3 loss in two models of skin carcinogenesis. First, using Dsg3-/- keratinocytes, we show that these cells display adhesion defects in vitro and compromised tumor growth in allograft assays, suggesting that Dsg3 enables tumor formation in certain settings. In contrast, using an autochthonous model for SCC development in response to chronic UVB treatment, we discover a surprising lack of enhanced tumorigenesis in Dsg3-/- mice relative to controls, unlike mice lacking the desmosomal component Perp. Accordingly, there is no defect in the apoptotic response to UVB or enhanced immune cell infiltration upon Dsg3 loss that could promote tumorigenesis. Thus, Dsg3 does not display a clear function as a tumor suppressor in these mouse skin cancer models. Continued unraveling of the roles of Dsg3 and other desmosomal constituents in carcinogenesis in different contexts will be important for ultimately improving cancer diagnosis, prognostication, and treatment.
Insights
Desmoglein 3 (Dsg3) loss impairs tumor growth in some models but does not promote skin cancer in mice. Further research on Dsg3 in carcinogenesis is needed for improved cancer treatments.
Area of Science:
- Cell Biology
- Oncology
- Dermatology
Background:
- Adherens junction inactivation, particularly E-cadherin loss, is linked to cancer progression.
- The role of desmosomal cadherins in cancer development remains largely unexplored.
Purpose of the Study:
- To investigate the functional role of desmosomal cadherins, specifically Desmoglein 3 (Dsg3), in skin carcinogenesis using mouse models.
- To determine if Dsg3 acts as a tumor suppressor in the context of skin cancer.
Main Methods:
- Utilized Dsg3 knockout (Dsg3-/-) mouse models and keratinocytes.
- Assessed cell-cell adhesion defects in vitro.
- Evaluated tumor growth in allograft assays.
- Investigated skin carcinogenesis in an autochthonous model following chronic UVB exposure.
Main Results:
- Dsg3-/- keratinocytes showed adhesion defects and compromised tumor growth in allograft assays.
- In contrast, Dsg3-/- mice did not exhibit enhanced skin tumorigenesis after UVB exposure, unlike Perp knockout mice.
- No significant defects in UVB-induced apoptosis or altered immune cell infiltration were observed in Dsg3-deficient mice.
Conclusions:
- Dsg3 does not function as a tumor suppressor in these specific mouse models of skin carcinogenesis.
- The role of Dsg3 in cancer development may be context-dependent.
- Further research into desmosomal components in carcinogenesis is crucial for advancing cancer diagnosis and treatment.

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