Restrained Terminal Differentiation and Sustained Stemness in Neonatal Skin by Ha-Ras and Bcl-2
Sangjun Lee1, Julio Rodriguez-Villanueva, Timothy McDonnell
1*CytoLumina Technologies Corp, Los Angeles, CA; †European Oncology Business Unit, Eisai Pharmaceuticals, Madrid, Spain; and ‡Department of Hematopathology, The University of Texas MD Anderson Cancer Center, Houston, TX.
Abstract:
Nonmelanoma skin cancer is the most frequently diagnosed cancer in the United States. Deregulation of bcl-2 and ras family members is commonly observed in nonmelanoma skin cancer. It has been previously demonstrated that simultaneous bcl-2 and Ha-ras gene expression in keratinocytes results in resistance to cell death induced by ultraviolet radiation and enhanced multistep skin carcinogenesis. In this study, we aimed to elucidate the central roles of Ha-Ras and Bcl-2 in maintaining epidermal homeostasis. To assess the effect of deregulated Ha-Ras and Bcl-2 on skin differentiation, we have generated skin-specific transgenic mouse model constitutively expressing both oncogenic Ha-Ras and Bcl-2. Ectopic expression of Ha-Ras and Bcl-2 in newborn double transgenic epidermal keratinocytes induced abnormal epidermal differentiation accompanied by increased cell proliferation and suppressed apoptotic cell death, which resulted in thickened and wrinkled skin morphology in neonate skins. Expression of epidermal differentiation marker cytokeratin 1 was decreased. Expression of other differentiation markers loricrin and filaggrin was also decreased and delayed to be detected only in the upper stratum granulosum, whereas the proliferative markers cytokeratin 14 and cytokeratin 6, which are expressed in constitutively proliferative basal layer and stem cell niches such as hair follicles or neoplastic lesions, respectively, were highly expressed. The abnormal expression of epidermal cytokeratins suggests that Ha-Ras and Bcl-2 suppress the terminal differentiation and sustain the stem cell-like features in epidermal keratinocytes.
Insights
Oncogenic Ha-Ras and Bcl-2 disrupt skin homeostasis by promoting keratinocyte proliferation and suppressing differentiation. This leads to abnormal skin development and may contribute to skin cancer progression.
Area of Science:
- Dermatology
- Molecular Biology
- Cancer Research
Background:
- Nonmelanoma skin cancer is the most common cancer in the US.
- Deregulation of Bcl-2 and Ras family genes is frequent in skin cancers.
- Simultaneous Bcl-2 and Ha-ras expression confers resistance to UV-induced cell death and promotes skin carcinogenesis.
Purpose of the Study:
- To investigate the roles of Ha-Ras and Bcl-2 in maintaining epidermal homeostasis.
- To assess the impact of deregulated Ha-Ras and Bcl-2 on skin differentiation.
- To understand the molecular mechanisms underlying skin carcinogenesis driven by these oncogenes.
Main Methods:
- Generation of a skin-specific transgenic mouse model constitutively expressing oncogenic Ha-Ras and Bcl-2.
- Analysis of epidermal differentiation markers (e.g., cytokeratin 1, loricrin, filaggrin).
- Assessment of proliferative markers (e.g., cytokeratin 14, cytokeratin 6) and apoptotic cell death.
Main Results:
- Constitutive expression of Ha-Ras and Bcl-2 in epidermal keratinocytes induced abnormal differentiation.
- Increased cell proliferation and suppressed apoptotic cell death were observed.
- Decreased expression of differentiation markers and increased expression of proliferative markers were noted, leading to thickened, wrinkled skin.
Conclusions:
- Deregulated Ha-Ras and Bcl-2 disrupt epidermal homeostasis by suppressing terminal differentiation.
- These oncogenes sustain stem cell-like features in epidermal keratinocytes.
- The findings highlight the critical roles of Ha-Ras and Bcl-2 in skin development and cancer.
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