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.

Cancer & Metabolism
|April 26, 2018
PubMed
Abstract

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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