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A strategically designed small molecule attacks alpha-ketoglutarate dehydrogenase in tumor cells through a redox
Shawn D Stuart, Alexandra Schauble, Sunita Gupta
1Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, NY 11794, USA. paul.bingham@stonybrook.edu.
Background:
Targeting cancer cell metabolism is recognized as a promising arena for development of cancer chemotherapeutics. Moreover, redox metabolism is also systematically altered in tumor cells. Indeed, there is growing reason to believe that tumor-specific alteration of redox control of metabolism will be central to understanding and attacking malignancy. We report here that lipoate analog CPI-613 attacks a gate-keeping, lipoate-using metabolic enzyme, alpha-ketoglutarate dehydrogenase (KGDH), by a redox mechanism selectively in tumors cells.
Results:
CPI-613 inhibited KGDH function strongly and rapidly, selectively in tumor cells. Moreover, CPI-613 induced a correspondingly rapid, powerful redox signal in tumor cell mitochondria. This signal was associated with redox modification of KGDH (including extensive enzyme glutathionylation and redox blockage of enzyme lipoate sulfhydryls), correlating with KGDH inactivation. The source of this tumor-specific mitochondrial redox modulatory signal was not electron transport complexes (I or III), but was largely or entirely the E3 (dihydrolipoamide dehydrogenase) component of dehydrogenases, including KGDH. Finally, we demonstrated that KGDH activity was redox regulated (in tumor cells), as expected if a tumor-specific redox process (auto)regulates KGDH.
Conclusions:
Our data demonstrate that lipoate analog CPI-613 attacks redox control of KGDH activity in tumor cells, perhaps by modulation of an existing lipoate-sensitive allosteric process normally governing tumor cell KGDH activity. Together with its previously reported, mechanistically distinct (non-redox) effects on the other major, lipoate-using mitochondrial metabolic enzyme, pyruvate dehydrogenase, CPI-613's KGDH effects indicate that this agent simultaneously attacks multiple central, essential components of tumor cell metabolic regulation.
Insights
The cancer drug CPI-613 selectively targets alpha-ketoglutarate dehydrogenase (KGDH) in tumor cells. This lipoate analog disrupts KGDH
Area of Science:
- Biochemistry and Molecular Biology
- Cancer Metabolism Research
- Redox Biology
Background:
- Targeting cancer cell metabolism is a key strategy for developing novel chemotherapeutics.
- Tumor cells exhibit systematic alterations in redox metabolism, suggesting its central role in malignancy.
- The lipoate analog CPI-613 targets the metabolic enzyme alpha-ketoglutarate dehydrogenase (KGDH) via a redox mechanism.
Purpose of the Study:
- To investigate the mechanism by which CPI-613 selectively inhibits KGDH in tumor cells.
- To elucidate the role of redox control in KGDH activity within tumor cells.
- To understand how CPI-613 impacts tumor cell metabolic regulation.
Main Methods:
- Assessed the inhibitory effects of CPI-613 on KGDH function in tumor cells.
- Measured mitochondrial redox signals induced by CPI-613.
- Analyzed redox modifications of KGDH, including glutathionylation and lipoate sulfhydryl blockage.
- Investigated the source of the mitochondrial redox signal, focusing on dehydrogenases and electron transport complexes.
Main Results:
- CPI-613 demonstrated potent and rapid inhibition of KGDH, selective to tumor cells.
- A significant mitochondrial redox signal was observed in tumor cells treated with CPI-613.
- KGDH inactivation correlated with its redox modification, particularly glutathionylation and lipoate sulfhydryl blockage.
- The E3 component of dehydrogenases, not electron transport complexes, was identified as the primary source of the redox signal.
Conclusions:
- CPI-613 targets the redox control of KGDH activity in tumor cells, potentially modulating an allosteric process.
- The drug's effects on KGDH suggest a disruption of tumor cell metabolic regulation.
- CPI-613 simultaneously targets multiple essential metabolic enzymes, including KGDH and pyruvate dehydrogenase, indicating a multi-pronged attack on tumor metabolism.
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