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Dichloroacetate and cancer: new home for an orphan drug?
Shyam Kankotia1, Peter W Stacpoole2
1Department of Medicine, Division of Endocrinology, Diabetes and Metabolism, University of Florida College of Medicine, Gainesville, FL, United States.
Abstract:
We reviewed the anti-cancer effects of DCA, an orphan drug long used as an investigational treatment for various acquired and congenital disorders of mitochondrial intermediary metabolism. Inhibition by DCA of mitochondrial pyruvate dehydrogenase kinases and subsequent reactivation of the pyruvate dehydrogenase complex and oxidative phosphorylation is the common mechanism accounting for the drug's anti-neoplastic effects. At least two fundamental changes in tumor metabolism are induced by DCA that antagonize tumor growth, metastases and survival: the first is the redirection of glucose metabolism from glycolysis to oxidation (reversal of the Warburg effect), leading to inhibition of proliferation and induction of caspase-mediated apoptosis. These effects have been replicated in both human cancer cell lines and in tumor implants of diverse germ line origin. The second fundamental change is the oxidative removal of lactate, via pyruvate, and the co-incident buffering of hydrogen ions by dehydrogenases located in the mitochondrial matrix. Preclinical studies demonstrate that DCA has additive or synergistic effects when used in combination with standard agents designed to modify tumor oxidative stress, vascular remodeling, DNA integrity or immunity. These findings and limited clinical results suggest that potentially fruitful areas for additional clinical trials include 1) adult and pediatric high grade astrocytomas; 2) BRAF-mutant cancers, such as melanoma, perhaps combined with other pro-oxidants; 3) tumors in which resistance to standard platinum-class drugs alone may be overcome with combination therapy; and 4) tumors of endodermal origin, in which extensive experimental research has demonstrated significant anti-proliferative, pro-apoptotic effects of DCA, leading to improved host survival.
Insights
DCA (dichloroacetate) shows anti-cancer effects by reversing the Warburg effect and promoting oxidative metabolism. This orphan drug inhibits tumor growth and enhances apoptosis, offering potential in combination therapies.
Area of Science:
- Biochemistry
- Oncology
- Metabolic Medicine
Background:
- DCA (dichloroacetate) is an orphan drug investigated for mitochondrial disorders.
- Its mechanism involves inhibiting pyruvate dehydrogenase kinases, reactivating pyruvate dehydrogenase complex and oxidative phosphorylation.
Purpose of the Study:
- To review the anti-cancer effects of DCA.
- To elucidate the metabolic mechanisms underlying DCA's anti-neoplastic activity.
- To identify potential clinical applications for DCA in cancer treatment.
Main Methods:
- Review of existing literature on DCA's anti-cancer effects.
- Analysis of DCA's impact on tumor metabolism, including glucose and lactate pathways.
- Examination of preclinical data on DCA in combination with other anti-cancer agents.
Main Results:
- DCA reverses the Warburg effect, redirecting glucose metabolism from glycolysis to oxidation, inhibiting proliferation and inducing apoptosis.
- DCA promotes oxidative removal of lactate and buffers hydrogen ions via mitochondrial dehydrogenases.
- Preclinical studies show additive or synergistic effects of DCA with agents targeting oxidative stress, vascular remodeling, DNA integrity, and immunity.
Conclusions:
- DCA exhibits significant anti-cancer properties by altering tumor metabolism.
- DCA holds promise as a therapeutic agent, particularly in combination therapies for various cancers.
- Further clinical trials are warranted for high-grade astrocytomas, BRAF-mutant cancers, platinum-resistant tumors, and endodermal tumors.
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