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Updated: Aug 9, 2026

Hyperpolarized 13C Metabolic Magnetic Resonance Spectroscopy and Imaging
Published on: December 30, 2016
Metabolic biomarker and kinase drug target discovery in cancer using stable isotope-based dynamic metabolic profiling
László G Boros1, Daniel J Brackett, George G Harrigan
1UCLA School of Medicine, Harbor-UCLA Research and Education Institute, Torrance, CA 90502, USA. boros@gcrc.rei.edu
Abstract:
Tumor cells respond to growth signals by the activation of protein kinases, altered gene expression and significant modifications in substrate flow and re-distribution among biosynthetic pathways. This results in a proliferating phenotype with altered cellular function. These transformed cells exhibit unique anabolic characteristics, which includes increased and preferential utilization of glucose through the non-oxidative steps of the pentose cycle for nucleic acid synthesis but limited de novo fatty acid synthesis and TCA cycle glucose oxidation. This primarily non-oxidative anabolic profile reflects an undifferentiated highly proliferative aneuploid cell phenotype and serves as a reliable metabolic biomarker to determine cell proliferation rate and the level of cell transformation/differentiation in response to drug treatment. Novel drugs effective in particular cancers exert their anti-proliferative effects by inducing significant reversions of a few specific non-oxidative anabolic pathways. Here we present evidence that cell transformation of various mechanisms is sustained by a unique disproportional substrate distribution between the two branches of the pentose cycle for nucleic acid synthesis, glycolysis and the TCA cycle for fatty acid synthesis and glucose oxidation. This can be demonstrated by the broad labeling and unique specificity of [1,2-(13)C(2)]glucose to trace a large number of metabolites in the metabolome. Stable isotope-based dynamic metabolic profiles (SIDMAP) serve the drug discovery process by providing a powerful new tool that integrates the metabolome into a functional genomics approach to developing new drugs. It can be used in screening kinases and their metabolic targets, which can therefore be more efficiently characterized, speeding up and improving drug testing, approval and labeling processes by saving trial and error type study costs in drug testing.
Insights
Cancer cells utilize glucose differently, favoring nucleic acid synthesis over fatty acid production. This metabolic shift, identified by stable isotope-based dynamic metabolic profiling, offers a biomarker for cancer proliferation and drug targeting.
Area of Science:
- Biochemistry
- Cancer Biology
- Metabolic Engineering
Background:
- Tumor cells exhibit altered metabolic pathways to support proliferation.
- Cancer cells preferentially use glucose via the pentose cycle for nucleic acid synthesis.
Purpose of the Study:
- To investigate the unique metabolic profile of transformed cells.
- To establish metabolic biomarkers for cancer proliferation and drug response.
- To demonstrate how stable isotope-based dynamic metabolic profiles (SIDMAP) aid drug discovery.
Main Methods:
- Utilizing [1,2-(13)C(2)]glucose labeling to trace metabolic pathways.
- Applying stable isotope-based dynamic metabolic profiles (SIDMAP) for metabolome analysis.
- Analyzing substrate distribution between pentose cycle, glycolysis, and TCA cycle.
Main Results:
- Transformed cells show increased glucose utilization via the non-oxidative pentose cycle.
- Limited de novo fatty acid synthesis and TCA cycle glucose oxidation observed in tumor cells.
- Disproportional substrate distribution identified as a key feature of cell transformation.
Conclusions:
- The non-oxidative anabolic profile is a biomarker for cancer proliferation and drug sensitivity.
- SIDMAP integrates metabolomics with functional genomics for efficient drug discovery.
- Targeting specific metabolic pathways can reverse cancer cell proliferation.

