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A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Characterization and clustering of kinase isoform expression in metastatic melanoma
David O Holland1, Valer Gotea1, Kevin Fedkenheuer1
1Translational and Functional Genomics Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, Maryland, United States of America.
Abstract:
Mutations to the human kinome are known to play causal roles in cancer. The kinome regulates numerous cell processes including growth, proliferation, differentiation, and apoptosis. In addition to aberrant expression, aberrant alternative splicing of cancer-driver genes is receiving increased attention as it could lead to loss or gain of functional domains, altering a kinase's downstream impact. The present study quantifies changes in gene expression and isoform ratios in the kinome of metastatic melanoma cells relative to primary tumors. We contrast 538 total kinases and 3,040 known kinase isoforms between 103 primary tumor and 367 metastatic samples from The Cancer Genome Atlas (TCGA). We find strong evidence of differential expression (DE) at the gene level in 123 kinases (23%). Additionally, of the 468 kinases with alternative isoforms, 60 (13%) had significant difference in isoform ratios (DIR). Notably, DE and DIR have little correlation; for instance, although DE highlights enrichment in receptor tyrosine kinases (RTKs), DIR identifies altered splicing in non-receptor tyrosine kinases (nRTKs). Using exon junction mapping, we identify five examples of splicing events favored in metastatic samples. We demonstrate differential apoptosis and protein localization between SLK isoforms in metastatic melanoma. We cluster isoform expression data and identify subgroups that correlate with genomic subtypes and anatomic tumor locations. Notably, distinct DE and DIR patterns separate samples with BRAF hotspot mutations and (N/K/H)RAS hotspot mutations, the latter of which lacks effective kinase inhibitor treatments. DE in RAS mutants concentrates in CMGC kinases (a group including cell cycle and splicing regulators) rather than RTKs as in BRAF mutants. Furthermore, isoforms in the RAS kinase subgroup show enrichment for cancer-related processes such as angiogenesis and cell migration. Our results reveal a new approach to therapeutic target identification and demonstrate how different mutational subtypes may respond differently to treatments highlighting possible new driver events in cancer.
Insights
Cancer-driving mutations in the human kinome are altered by differential gene expression and alternative splicing. This study reveals distinct kinase patterns in metastatic melanoma, differentiating between BRAF and RAS mutations for targeted therapies.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Kinase mutations are key drivers of cancer, regulating critical cell functions.
- Aberrant gene expression and alternative splicing of kinases can alter their function and impact cancer progression.
- Metastatic melanoma presents complex genomic alterations affecting the kinome.
Purpose of the Study:
- To quantify changes in gene expression and isoform ratios within the kinome of metastatic melanoma compared to primary tumors.
- To investigate the correlation between differential gene expression (DE) and differential isoform ratios (DIR) in melanoma.
- To identify kinase-specific alterations associated with distinct genomic subtypes, such as BRAF and RAS mutations.
Main Methods:
- Comparative analysis of gene expression and kinase isoform ratios using The Cancer Genome Atlas (TCGA) data.
- Utilized exon junction mapping to identify specific alternative splicing events.
- Clustering of isoform expression data to correlate with genomic subtypes and tumor locations.
Main Results:
- Identified differential expression in 23% of kinases and altered isoform ratios in 13% of kinases between primary and metastatic melanoma.
- Observed a low correlation between DE and DIR, with distinct kinase groups affected (e.g., RTKs by DE, nRTKs by DIR).
- Discovered unique DE and DIR patterns for BRAF-mutated versus RAS-mutated melanoma, with RAS mutants showing altered CMGC kinase activity and enriched pro-metastatic pathways.
Conclusions:
- Aberrant kinase expression and splicing are significant in melanoma metastasis, offering new therapeutic avenues.
- Distinct kinome alterations in BRAF versus RAS mutant melanoma suggest differential treatment responses.
- Kinase isoform analysis provides a novel approach for identifying cancer drivers and guiding personalized therapies.

