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Role of oncogenes and tumor suppressor genes in multistage carcinogenesis
S H Yuspa1, A A Długosz, C K Cheng
1Laboratory of Cellular Carcinogenesis and Tumor Promotion, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892.
Abstract:
The introduction of the techniques of molecular biology as tools to study skin carcinogenesis has provided more precise localization of biochemical pathways that regulate the tumor phenotype. This approach has identified genetic changes that are characteristic of each of the specific stages of squamous cancer pathogenesis: initiation, exogenous promotion, premalignant progression, and malignant conversion. Initiation can result from mutations in a single gene, and the Harvey allele of the ras gene family has been identified as a frequent site for initiating mutations. Heterozygous activating mutations in c-rasHa are dominant, and affected keratinocytes hyperproliferate and are resistant to signals for terminal differentiation. An important pathway impacted by c-rasHa activation is the protein kinase C (PKC) pathway, a major regulator of keratinocyte differentiation. Increased activity of PKC alpha and suppression of PKC delta by tyrosine phosphorylation contribute to the phenotypic consequences of rasHa gene activation in keratinocytes. Tumor promoters disturb epidermal homeostasis and cause selective clonal expansion of initiated cells to produce multiple benign squamous papillomas. Resistance to differentiation and enhanced growth rate of initiated cells impart a growth advantage when the epidermis is exposed to promoters. The frequency of premalignant progression varies among papillomas, and subpopulations at high risk for progression have been identified. These high-risk papillomas overexpress the alpha 6 beta 4 integrin and are deficient in transforming growth factor beta 1 and beta 2 peptides, two changes associated with a very high proliferation rate in this subset of tumors. The introduction of an oncogenic rasHa gene into epidermal cells derived from transgenic mice with a null mutation in the TGF beta 1 gene have an accelerated rate of malignant progression when examined in vivo. Thus members of the TGF beta gene family contribute a tumor-suppressor function in carcinogenesis. Accelerated malignant progression is also found with v-rasHa transduced keratinocytes from skin of mice with a null mutation in the p53 gene. The similarities in risk for malignant conversion by initiated keratinocytes from TG beta 1 and p53 null geneotypes suggest that a common, growth-related pathway may underly the tumor-suppressive functions of these proteins in the skin carcinogenesis model.
Insights
Molecular biology reveals genetic changes in skin cancer stages. Activating ras gene mutations drive keratinocyte hyperproliferation and tumor development, with TGF-beta and p53 playing tumor-suppressor roles.
Area of Science:
- Oncology
- Molecular Biology
- Dermatology
Background:
- Skin carcinogenesis involves complex genetic and biochemical pathways.
- Molecular biology techniques offer precise localization of these pathways.
- Understanding these pathways is crucial for identifying therapeutic targets.
Purpose of the Study:
- To elucidate the genetic alterations and biochemical pathways involved in skin cancer pathogenesis.
- To identify key molecular events driving tumor initiation, promotion, progression, and malignant conversion.
- To investigate the roles of specific genes and signaling pathways in regulating keratinocyte behavior during carcinogenesis.
Main Methods:
- Utilizing molecular biology tools to study skin carcinogenesis.
- Identifying genetic mutations, including those in the ras gene family.
- Analyzing the impact of gene mutations on keratinocyte proliferation, differentiation, and signaling pathways like protein kinase C (PKC).
- Investigating the role of transforming growth factor beta (TGF-beta) and p53 in tumor suppression.
Main Results:
- Activating mutations in the Harvey ras (Ha-ras) gene are frequent initiating events in skin cancer.
- Ha-ras activation leads to keratinocyte hyperproliferation and resistance to differentiation, partly via the PKC pathway.
- High-risk papillomas exhibit overexpression of alpha 6 beta 4 integrin and deficiency in TGF-beta 1 and TGF-beta 2.
- Loss of TGF-beta 1 or p53 function accelerates malignant progression in ras-initiated skin tumors.
Conclusions:
- Genetic changes, particularly ras mutations, are critical drivers of skin cancer initiation and progression.
- The TGF-beta and p53 gene families act as tumor suppressors in skin carcinogenesis.
- Common growth-related pathways may mediate the tumor-suppressive functions of TGF-beta and p53.