Multi-modality imaging to assess metabolic response to dichloroacetate treatment in tumor models
Marie-Aline Neveu1, Géraldine De Preter1, Nicolas Joudiou1
1Biomedical Magnetic Resonance Research Group, Louvain Drug Research Institute, Université catholique de Louvain, Brussels, Belgium.
Abstract:
Reverting glycolytic metabolism is an attractive strategy for cancer therapy as upregulated glycolysis is a hallmark in various cancers. Dichloroacetate (DCA), long used to treat lactic acidosis in various pathologies, has emerged as a promising anti-cancer drug. By inhibiting the pyruvate dehydrogenase kinase, DCA reactivates the mitochondrial function and decreases the glycolytic flux in tumor cells resulting in cell cycle arrest and apoptosis. We recently documented that DCA was able to induce a metabolic switch preferentially in glycolytic cancer cells, leading to a more oxidative phenotype and decreasing proliferation, while oxidative cells remained less sensitive to DCA treatment. To evaluate the relevance of this observation in vivo, the aim of the present study was to characterize the effect of DCA in glycolytic MDA-MB-231 tumors and in oxidative SiHa tumors using advanced pharmacodynamic metabolic biomarkers. Oxygen consumption, studied by 17O magnetic resonance spectroscopy, glucose uptake, evaluated by 18F-FDG PET and pyruvate transformation into lactate, measured using hyperpolarized 13C-magnetic resonance spectroscopy, were monitored before and 24 hours after DCA treatment in tumor bearing mice. In both tumor models, no clear metabolic shift was observed. Surprisingly, all these imaging parameters concur to the conclusion that both glycolytic tumors and oxidative tumors presented a similar response to DCA. These results highlight a major discordance in metabolic cancer cell bioenergetics between in vitro and in vivo setups, indicating critical role of the local microenvironment in tumor metabolic behaviors.
Insights
Dichloroacetate (DCA) shows promise as an anti-cancer drug by targeting cancer cell metabolism. However, in vivo studies revealed that DCA affects both glycolytic and oxidative tumors similarly, contrary to in vitro findings.
Area of Science:
- Biochemistry
- Oncology
- Medical Imaging
Background:
- Upregulated glycolysis is a hallmark of many cancers, making its reversion a key therapeutic strategy.
- Dichloroacetate (DCA) is a drug that inhibits pyruvate dehydrogenase kinase, reactivating mitochondrial function and reducing cancer cell glycolysis.
Purpose of the Study:
- To evaluate the in vivo efficacy of DCA in glycolytic (MDA-MB-231) and oxidative (SiHa) tumors.
- To characterize DCA's effects using advanced pharmacodynamic metabolic biomarkers.
Main Methods:
- In vivo studies in tumor-bearing mice.
- 17O magnetic resonance spectroscopy for oxygen consumption.
- 18F-FDG PET for glucose uptake.
- Hyperpolarized 13C-magnetic resonance spectroscopy for pyruvate transformation.
Main Results:
- DCA treatment did not induce a clear metabolic shift in either tumor model.
- Both glycolytic and oxidative tumors exhibited similar responses to DCA.
- Pharmacodynamic imaging parameters indicated comparable effects across tumor types.
Conclusions:
- In vivo results show a discordance with in vitro findings regarding DCA's metabolic effects on cancer cells.
- The tumor microenvironment plays a critical role in dictating tumor metabolic behavior in vivo.
- DCA's anti-cancer effects may be more complex in vivo than previously suggested by in vitro studies.


