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Published on: July 22, 2020
Identification of druggable cancer driver genes amplified across TCGA datasets
Ying Chen1, Jeremy McGee1, Xianming Chen1
1Department of Oncology, Eli Lilly and Company, Indianapolis, Indiana, United States of America.
Abstract:
The Cancer Genome Atlas (TCGA) projects have advanced our understanding of the driver mutations, genetic backgrounds, and key pathways activated across cancer types. Analysis of TCGA datasets have mostly focused on somatic mutations and translocations, with less emphasis placed on gene amplifications. Here we describe a bioinformatics screening strategy to identify putative cancer driver genes amplified across TCGA datasets. We carried out GISTIC2 analysis of TCGA datasets spanning 16 cancer subtypes and identified 486 genes that were amplified in two or more datasets. The list was narrowed to 75 cancer-associated genes with potential "druggable" properties. The majority of the genes were localized to 14 amplicons spread across the genome. To identify potential cancer driver genes, we analyzed gene copy number and mRNA expression data from individual patient samples and identified 42 putative cancer driver genes linked to diverse oncogenic processes. Oncogenic activity was further validated by siRNA/shRNA knockdown and by referencing the Project Achilles datasets. The amplified genes represented a number of gene families, including epigenetic regulators, cell cycle-associated genes, DNA damage response/repair genes, metabolic regulators, and genes linked to the Wnt, Notch, Hedgehog, JAK/STAT, NF-KB and MAPK signaling pathways. Among the 42 putative driver genes were known driver genes, such as EGFR, ERBB2 and PIK3CA. Wild-type KRAS was amplified in several cancer types, and KRAS-amplified cancer cell lines were most sensitive to KRAS shRNA, suggesting that KRAS amplification was an independent oncogenic event. A number of MAP kinase adapters were co-amplified with their receptor tyrosine kinases, such as the FGFR adapter FRS2 and the EGFR family adapters GRB2 and GRB7. The ubiquitin-like ligase DCUN1D1 and the histone methyltransferase NSD3 were also identified as novel putative cancer driver genes. We discuss the patient tailoring implications for existing cancer drug targets and we further discuss potential novel opportunities for drug discovery efforts.
Insights
This study identifies 42 amplified cancer driver genes across The Cancer Genome Atlas (TCGA) datasets, revealing new drug targets. These amplified genes are linked to key cancer pathways and oncogenic processes.
Area of Science:
- Genomics
- Bioinformatics
- Cancer Biology
Background:
- The Cancer Genome Atlas (TCGA) has significantly advanced cancer genomics.
- Previous TCGA analyses focused on mutations and translocations, with less emphasis on gene amplifications.
- Gene amplifications are crucial but understudied drivers of oncogenesis.
Purpose of the Study:
- To develop a bioinformatics strategy for identifying amplified cancer driver genes in TCGA datasets.
- To discover novel amplified genes with potential therapeutic implications across various cancer types.
Main Methods:
- GISTIC2 analysis of TCGA datasets across 16 cancer subtypes.
- Integration of gene copy number and mRNA expression data.
- Validation using siRNA/shRNA knockdown and Project Achilles datasets.
Main Results:
- Identified 486 amplified genes in two or more TCGA datasets, narrowed to 75 druggable candidates.
- Discovered 42 putative cancer driver genes linked to oncogenic processes, including known drivers (EGFR, ERBB2, PIK3CA) and novel ones (DCUN1D1, NSD3).
- Confirmed KRAS amplification as an independent oncogenic event and identified co-amplification of MAP kinase adapters with receptor tyrosine kinases.
Conclusions:
- Gene amplifications represent a significant, yet underexplored, source of cancer drivers.
- The identified 42 driver genes offer potential for patient-tailored therapies and novel drug discovery.
- This study highlights the importance of analyzing gene copy number alterations in cancer genomics.
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