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Pharmacologic Induction of Epidermal Melanin and Protection Against Sunburn in a Humanized Mouse Model
Published on: September 7, 2013
Active natural compounds perturb the melanoma risk-gene network
Luying Shao1, Yibo Zhao2, Michael Heinrich1,3
1Department of Pharmaceutical and Biological Chemistry, UCL School of Pharmacy, WC1N 1AX London, UK.
Abstract:
Cutaneous melanoma is an aggressive type of skin cancer with a complex genetic landscape caused by the malignant transformation of melanocytes. This study aimed at providing an in silico network model based on the systematic profiling of the melanoma-associated genes considering germline mutations, somatic mutations, and genome-wide association study signals accounting for a total of 232 unique melanoma risk genes. A protein-protein interaction network was constructed using the melanoma risk genes as seeds and evaluated to describe the functional landscape in which the melanoma genes operate within the cellular milieu. Not only were the majority of the melanoma risk genes able to interact with each other at the protein level within the core of the network, but this showed significant enrichment for genes whose expression is altered in human melanoma specimens. Functional annotation showed the melanoma risk network to be significantly associated with processes related to DNA metabolism and telomeres, DNA damage and repair, cellular ageing, and response to radiation. We further explored whether the melanoma risk network could be used as an in silico tool to predict the efficacy of anti-melanoma phytochemicals, that are considered active molecules with potentially less systemic toxicity than classical cytotoxic drugs. A significant portion of the melanoma risk network showed differential expression when SK-MEL-28 human melanoma cells were exposed to the phytochemicals harmine and berberine chloride. This reinforced our hypothesis that the network modeling approach not only provides an alternative way to identify molecular pathways relevant to disease but it may also represent an alternative screening approach to prioritize potentially active compounds.
Insights
This study models melanoma risk genes to reveal key cellular processes and predict phytochemical effectiveness. The network approach aids in identifying cancer pathways and screening potential anti-melanoma compounds.
Area of Science:
- Genomics
- Bioinformatics
- Cancer Research
Background:
- Cutaneous melanoma is an aggressive skin cancer with a complex genetic basis.
- Understanding melanoma-associated genes is crucial for developing targeted therapies.
Purpose of the Study:
- To create an in silico network model of 232 unique melanoma risk genes.
- To analyze the functional landscape of these genes in melanoma development.
- To explore the network's utility in predicting phytochemical efficacy against melanoma.
Main Methods:
- Systematic profiling of germline mutations, somatic mutations, and GWAS signals for melanoma risk genes.
- Construction and evaluation of a protein-protein interaction network.
- Functional annotation and enrichment analysis of the network.
- Assessing differential gene expression in melanoma cells treated with phytochemicals.
Main Results:
- The melanoma risk gene network showed significant enrichment for genes with altered expression in melanoma.
- The network is strongly associated with DNA metabolism, telomeres, DNA repair, cellular aging, and radiation response.
- A portion of the network exhibited differential expression upon exposure to harmine and berberine chloride.
Conclusions:
- Network modeling provides insights into molecular pathways relevant to melanoma.
- This approach can serve as an alternative screening method for prioritizing anti-melanoma phytochemicals.
- The study highlights the potential of in silico tools in cancer research and drug discovery.
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