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Published on: November 1, 2011
Hypermutation of DPYD Deregulates Pyrimidine Metabolism and Promotes Malignant Progression
Lauren Edwards1, Rohit Gupta1, Fabian Volker Filipp2
1Systems Biology and Cancer Metabolism, Program for Quantitative Systems Biology, University of California Merced, Merced, California.
Unlabelled:
New strategies are needed to diagnose and target human melanoma. To this end, genomic analyses was performed to assess somatic mutations and gene expression signatures using a large cohort of human skin cutaneous melanoma (SKCM) patients from The Cancer Genome Atlas (TCGA) project to identify critical differences between primary and metastatic tumors. Interestingly, pyrimidine metabolism is one of the major pathways to be significantly enriched and deregulated at the transcriptional level in melanoma progression. In addition, dihydropyrimidine dehydrogenase (DPYD) and other important pyrimidine-related genes: DPYS, AK9, CAD, CANT1, ENTPD1, NME6, NT5C1A, POLE, POLQ, POLR3B, PRIM2, REV3L, and UPP2 are significantly enriched in somatic mutations relative to the background mutation rate. Structural analysis of the DPYD protein dimer reveals a potential hotspot of recurring somatic mutations in the ligand-binding sites as well as the interfaces of protein domains that mediated electron transfer. Somatic mutations of DPYD are associated with upregulation of pyrimidine degradation, nucleotide synthesis, and nucleic acid processing while salvage and nucleotide conversion is downregulated in TCGA SKCM.
Implications:
At a systems biology level, somatic mutations of DPYD cause a switch in pyrimidine metabolism and promote gene expression of pyrimidine enzymes toward malignant progression.
Insights
Somatic mutations in dihydropyrimidine dehydrogenase (DPYD) disrupt pyrimidine metabolism in melanoma. This switch promotes malignant progression and impacts nucleotide synthesis pathways.
Area of Science:
- Oncology
- Genomics
- Biochemistry
Background:
- Melanoma diagnosis and treatment require novel strategies.
- Genomic alterations are key drivers of melanoma progression.
- Understanding metabolic pathway dysregulation is crucial for targeting melanoma.
Purpose of the Study:
- To identify genomic differences between primary and metastatic melanoma.
- To investigate the role of pyrimidine metabolism in melanoma progression.
- To analyze the impact of somatic mutations on DPYD and related genes.
Main Methods:
- Genomic analysis of The Cancer Genome Atlas (TCGA) skin cutaneous melanoma (SKCM) cohort.
- Assessment of somatic mutations and gene expression signatures.
- Structural analysis of the DPYD protein dimer.
Main Results:
- Pyrimidine metabolism is significantly enriched and transcriptionally deregulated in melanoma.
- DPYD and other pyrimidine-related genes show enrichment in somatic mutations.
- DPYD mutations correlate with altered pyrimidine degradation, nucleotide synthesis, and nucleic acid processing.
Conclusions:
- Somatic mutations in DPYD induce a metabolic switch in pyrimidine pathways.
- These mutations promote gene expression of pyrimidine enzymes, driving malignant progression.
- DPYD mutations represent a potential therapeutic target in melanoma.
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