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Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
The epidermal polarity protein Par3 is a non-cell autonomous suppressor of malignant melanoma
Melina Mescher1,2, Peter Jeong1,2, Sina K Knapp1,2
1Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases, University of Cologne, 50923 Köln, Germany.
Abstract:
Melanoma, an aggressive skin malignancy with increasing lifetime risk, originates from melanocytes (MCs) that are in close contact with surrounding epidermal keratinocytes (KCs). How the epidermal microenvironment controls melanomagenesis remains poorly understood. In this study, we identify an unexpected non-cell autonomous role of epidermal polarity proteins, molecular determinants of cytoarchitecture, in malignant melanoma. Epidermal Par3 inactivation in mice promotes MC dedifferentiation, motility, and hyperplasia and, in an autochthonous melanoma model, results in increased tumor formation and lung metastasis. KC-specific Par3 loss up-regulates surface P-cadherin that is essential to promote MC proliferation and phenotypic switch toward dedifferentiation. In agreement, low epidermal PAR3 and high P-cadherin expression correlate with human melanoma progression, whereas elevated P-cadherin levels are associated with reduced survival of melanoma patients, implying that this mechanism also drives human disease. Collectively, our data show that reduced KC Par3 function fosters a permissive P-cadherin-dependent niche for MC transformation, invasion, and metastasis. This reveals a previously unrecognized extrinsic tumor-suppressive mechanism, whereby epithelial polarity proteins dictate the cytoarchitecture and fate of other tissue-resident cells to suppress their malignant outgrowth.
Insights
Epidermal polarity protein Par3 loss in keratinocytes (KCs) promotes melanoma by up-regulating P-cadherin. This creates a microenvironment that drives melanoma cell transformation, invasion, and metastasis.
Area of Science:
- Dermatology
- Cancer Biology
- Cell Biology
Background:
- Melanoma is an aggressive skin cancer with increasing incidence.
- The role of the epidermal microenvironment in melanoma development is not fully understood.
- Melanoma originates from melanocytes (MCs) interacting with keratinocytes (KCs).
Purpose of the Study:
- To investigate the non-cell autonomous role of epidermal polarity proteins in melanoma.
- To elucidate the mechanism by which keratinocyte microenvironment influences melanomagenesis.
Main Methods:
- Mice with inactivated Par3 in epidermal keratinocytes were used.
- An autochthonous melanoma model was employed.
- Expression levels of Par3 and P-cadherin were analyzed in mouse models and human melanoma samples.
Main Results:
- Inactivation of Par3 in KCs promoted MC dedifferentiation, hyperplasia, tumor formation, and lung metastasis.
- KC-specific Par3 loss led to increased surface P-cadherin expression.
- High P-cadherin expression correlated with melanoma progression and reduced patient survival.
Conclusions:
- Reduced KC Par3 function creates a P-cadherin-dependent niche that promotes melanoma initiation and metastasis.
- Epidermal polarity proteins act extrinsically to suppress melanoma by maintaining tissue cytoarchitecture.
- This study reveals a novel tumor-suppressive mechanism involving epithelial polarity proteins in controlling melanoma progression.

