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Targeting Energy Metabolism by a Platinum(IV) Prodrug as an Alternative Pathway for Cancer Suppression
Suxing Jin1, Yan Guo2, Dongfan Song2
1State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences , Nanjing University , Nanjing 210023 , P.R. China.
Abstract:
Cancer is characterized by abnormal cellular energy metabolism, which preferentially switches to aerobic glycolysis rather than oxidative phosphorylation as a means of glucose metabolism. Many key enzymes involved in the abnormal glycolysis are potential targets of anticancer drugs. Platinum(IV) complexes are potential anticancer prodrugs and kinetically more inert than the platinum(II) counterparts, which offer an opportunity to be modified by functional ligands for activation or targeted delivery. A novel platinum(IV) complex, c, c, t-[Pt(NH3)2Cl2(C10H15N2O3S)(C2HO2Cl2)] (DPB), was designed to explore the effects of axial ligands on the reactivity and bioactivity of the complex as well as on tumor energy metabolism. The complex was characterized by electrospray ionization mass spectrometry and multinuclear (1H, 13C, and 195Pt) NMR spectroscopy. The introduction of dichloroacetate (DCA) markedly increases the lipophilicity, reactivity, and cytotoxicity of the complex and blocks the growth of cancer cells having active glycolysis, and the introduction of biotin (C10H16N2O3S) enhances the tumor-targeting potential of the complex. The cytotoxicity of DPB is increased dramatically in a variety of cancer cell lines as compared with the platinum(IV) complex PB without the DCA group. DPB alters the mitochondrial membrane potential and disrupts the mitochondrial morphology. The levels of mitochondrial and cellular reactive oxygen species are also decreased. Furthermore, the mitochondrial function of tumor cells was impaired by DPB, leading to the inhibition of both glycolysis and glucose oxidation and finally to the death of cancer cells via a mitochondria-mediated apoptotic pathway. These findings demonstrate that DPB suppresses cancer cells mainly through altering metabolic pathways and highlight the importance of dual-targeting for the efficacy of anticancer drugs.
Insights
A novel platinum(IV) complex, DPB, effectively targets cancer cells by disrupting their energy metabolism. This dual-action drug inhibits glycolysis and glucose oxidation, leading to cancer cell death via apoptosis.
Area of Science:
- Oncology
- Medicinal Chemistry
- Biochemistry
Background:
- Cancer cells exhibit altered energy metabolism, relying on aerobic glycolysis.
- Platinum(IV) complexes offer potential as anticancer prodrugs with tunable properties.
- Targeting tumor metabolism is a promising anticancer strategy.
Purpose of the Study:
- To design and characterize a novel platinum(IV) complex (DPB) with enhanced anticancer properties.
- To investigate the effects of axial ligands on DPB's reactivity, bioactivity, and tumor metabolism.
- To explore DPB's mechanism of action in cancer cells.
Main Methods:
- Synthesis and characterization of the platinum(IV) complex DPB using mass spectrometry and NMR spectroscopy.
- Evaluation of DPB's cytotoxicity and effects on cellular energy metabolism in various cancer cell lines.
- Assessment of mitochondrial function, membrane potential, and reactive oxygen species levels.
Main Results:
- DPB exhibits significantly increased lipophilicity, reactivity, and cytotoxicity compared to similar complexes without dichloroacetate (DCA).
- DPB effectively inhibits the growth of cancer cells with active glycolysis and enhances tumor targeting via biotin.
- DPB disrupts mitochondrial morphology and function, leading to apoptosis in cancer cells.
Conclusions:
- The novel platinum(IV) complex DPB demonstrates potent anticancer activity by targeting tumor-specific metabolic pathways.
- The strategic incorporation of dichloroacetate and biotin enhances DPB's efficacy and tumor-targeting capabilities.
- DPB represents a promising dual-targeting anticancer agent that warrants further investigation.
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