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Primary Orthotopic Glioma Xenografts Recapitulate Infiltrative Growth and Isocitrate Dehydrogenase I Mutation
Published on: January 14, 2014
Metabolic characterization of isocitrate dehydrogenase (IDH) mutant and IDH wildtype gliomaspheres uncovers cell
Matthew Garrett1, Jantzen Sperry2, Daniel Braas2,3
11Department of Neurosurgery, and the Interdepartmental Program in the Neurosciences, University of California, Los Angeles, CA 90095 USA.
Background:
There is considerable interest in defining the metabolic abnormalities of IDH mutant tumors to exploit for therapy. While most studies have attempted to discern function by using cell lines transduced with exogenous IDH mutant enzyme, in this study, we perform unbiased metabolomics to discover metabolic differences between a cohort of patient-derived IDH1 mutant and IDH wildtype gliomaspheres.
Methods:
Using both our own microarray and the TCGA datasets, we performed KEGG analysis to define pathways differentially enriched in IDH1 mutant and IDH wildtype cells and tumors. Liquid chromatography coupled to mass spectrometry analysis with labeled glucose and deoxycytidine tracers was used to determine differences in overall cellular metabolism and nucleotide synthesis. Radiation-induced DNA damage and repair capacity was assessed using a comet assay. Differences between endogenous IDH1 mutant metabolism and that of IDH wildtype cells transduced with the IDH1 (R132H) mutation were also investigated.
Results:
Our KEGG analysis revealed that IDH wildtype cells were enriched for pathways involved in de novo nucleotide synthesis, while IDH1 mutant cells were enriched for pathways involved in DNA repair. LC-MS analysis with fully labeled 13C-glucose revealed distinct labeling patterns between IDH1 mutant and wildtype cells. Additional LC-MS tracing experiments confirmed increased de novo nucleotide synthesis in IDH wildtype cells relative to IDH1 mutant cells. Endogenous IDH1 mutant cultures incurred less DNA damage than IDH wildtype cultures and sustained better overall growth following X-ray radiation. Overexpression of mutant IDH1 in a wildtype line did not reproduce the range of metabolic differences observed in lines expressing endogenous mutations, but resulted in depletion of glutamine and TCA cycle intermediates, an increase in DNA damage following radiation, and a rise in intracellular ROS.
Conclusions:
These results demonstrate that IDH1 mutant and IDH wildtype cells are easily distinguishable metabolically by analyzing expression profiles and glucose consumption. Our results also highlight important differences in nucleotide synthesis utilization and DNA repair capacity that could be exploited for therapy. Altogether, this study demonstrates that IDH1 mutant gliomas are a distinct subclass of glioma with a less malignant, but also therapy-resistant, metabolic profile that will likely require distinct modes of therapy.
Insights
Metabolic profiling distinguishes IDH1 mutant gliomas from wildtype, revealing differences in nucleotide synthesis and DNA repair. These IDH mutant gliomas exhibit a less malignant, therapy-resistant profile requiring unique treatment strategies.
Area of Science:
- Oncology
- Metabolomics
- Cancer Metabolism
Background:
- Isocitrate dehydrogenase (IDH) mutations are common in gliomas, driving distinct metabolic alterations.
- Understanding these metabolic differences is crucial for developing targeted therapies.
- Previous studies often used engineered cell lines; this study focuses on patient-derived gliomaspheres.
Purpose of the Study:
- To define the metabolic abnormalities in IDH mutant gliomas using unbiased metabolomics.
- To compare metabolic profiles of patient-derived IDH1 mutant and IDH wildtype gliomaspheres.
- To identify therapeutic vulnerabilities based on metabolic distinctions.
Main Methods:
- Comparative metabolomics (LC-MS) on patient-derived IDH1 mutant and wildtype gliomaspheres.
- Analysis of microarray and TCGA datasets using KEGG pathway analysis.
- Isotopic tracing with 13C-glucose and deoxycytidine to assess nucleotide synthesis.
- Assessment of DNA damage and repair capacity following radiation.
Main Results:
- IDH1 mutant cells showed enrichment in DNA repair pathways, while wildtype cells favored de novo nucleotide synthesis.
- Distinct metabolic labeling patterns were observed using 13C-glucose tracing.
- IDH1 mutant cells exhibited reduced DNA damage and better survival post-radiation compared to wildtype.
- Overexpression of mutant IDH1 in wildtype cells partially mimicked metabolic changes but differed from endogenous mutations.
Conclusions:
- IDH1 mutant and wildtype gliomas possess distinct metabolic profiles, identifiable through expression and glucose consumption analysis.
- Differences in nucleotide synthesis and DNA repair offer potential therapeutic targets.
- IDH1 mutant gliomas represent a subclass with a less aggressive but therapy-resistant metabolic phenotype, necessitating tailored therapeutic approaches.
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