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Updated: May 22, 2026

A Melanoma Patient-Derived Xenograft Model
Published on: May 20, 2019
Aggressiveness of human melanoma xenograft models is promoted by aneuploidy-driven gene expression deregulation
Véronique Mathieu1, Christine Pirker, Wolfgang M Schmidt
1Laboratory of Toxicology, Faculty of Pharmacy, Université Libre de Bruxelles, Brussels, Belgium.
Abstract:
Melanoma is a devastating skin cancer characterized by distinct biological subtypes. Besides frequent mutations in growth- and survival-promoting genes like BRAF and NRAS, melanomas additionally harbor complex non-random genomic alterations. Using an integrative approach, we have analysed genomic and gene expression changes in human melanoma cell lines (N=32) derived from primary tumors and various metastatic sites and investigated the relation to local growth aggressiveness as xenografts in immuno-compromised mice (N=22). Although the vast majority >90% of melanoma models harbored mutations in either BRAF or NRAS, significant differences in subcutaneous growth aggressiveness became obvious. Unsupervised clustering revealed that genomic alterations rather than gene expression data reflected this aggressive phenotype, while no association with histology, stage or metastatic site of the original melanoma was found. Genomic clustering allowed separation of melanoma models into two subgroups with differing local growth aggressiveness in vivo. Regarding genes expressed at significantly altered levels between these subgroups, a surprising correlation with the respective gene doses (>85% accordance) was found. Genes deregulated at the DNA and mRNA level included well-known cancer genes partly already linked to melanoma (RAS genes, PTEN, AURKA, MAPK inhibitors Sprouty/Spred), but also novel candidates like SIPA1 (a Rap1GAP). Pathway mining further supported deregulation of Rap1 signaling in the aggressive subgroup e.g. by additional repression of two Rap1GEFs. Accordingly, siRNA-mediated down-regulation of SIPA1 exerted significant effects on clonogenicity, adherence and migration in aggressive melanoma models. Together our data suggest that an aneuploidy-driven gene expression deregulation drives local aggressiveness in human melanoma.
Insights
Genomic alterations, not gene expression, drive melanoma aggressiveness. Aneuploidy-driven gene deregulation, including SIPA1, impacts local tumor growth and metastasis in this skin cancer.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Melanoma exhibits diverse biological subtypes with frequent BRAF/NRAS mutations.
- Melanomas possess complex, non-random genomic alterations alongside genetic mutations.
Purpose of the Study:
- To analyze genomic and gene expression changes in human melanoma cell lines.
- To investigate the relationship between these changes and local growth aggressiveness in vivo.
- To identify key genes and pathways driving melanoma progression.
Main Methods:
- Integrative analysis of genomic and gene expression data from 32 human melanoma cell lines.
- Xenograft studies in immunocompromised mice (N=22) to assess tumor growth aggressiveness.
- Unsupervised clustering for genomic and gene expression data analysis.
- siRNA-mediated gene silencing to evaluate functional impact.
Main Results:
- Genomic alterations, not gene expression, correlated with subcutaneous growth aggressiveness.
- Two distinct melanoma subgroups with differing aggressiveness were identified via genomic clustering.
- Genes deregulated at DNA/mRNA levels included known cancer genes and novel candidates like SIPA1 (Rap1GAP).
- Deregulation of Rap1 signaling pathways was observed in aggressive melanoma subgroups.
- SIPA1 down-regulation significantly affected melanoma cell clonogenicity, adherence, and migration.
Conclusions:
- Aneuploidy-driven gene expression deregulation is a key driver of local aggressiveness in human melanoma.
- Genomic alterations play a critical role in determining melanoma's aggressive phenotype.
- SIPA1 emerges as a potential therapeutic target for aggressive melanoma.
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