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Published on: November 28, 2015
Pharmacologically inhibiting phosphoglycerate kinase 1 for glioma with NG52
Wen-Liang Wang1,2, Zong-Ru Jiang1,2, Chen Hu1
1High Magnetic Field Laboratory, Key Laboratory of High Magnetic Field and Ion Beam Physical Biology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, 230031, China.
Abstract:
Inhibition of glycolysis process has been an attractive approach for cancer treatment due to the evidence that tumor cells are more dependent on glycolysis rather than oxidative phosphorylation pathway. Preliminary evidence shows that inhibition of phosphoglycerate kinase 1 (PGK1) kinase activity would reverse the Warburg effect and make tumor cells lose the metabolic advantage for fueling the proliferation through restoration of the pyruvate dehydrogenase (PDH) activity and subsequently promotion of pyruvic acid to enter the Krebs cycle in glioma. However, due to the lack of small molecule inhibitors of PGK1 kinase activity to treat glioma, whether PGK1 could be a therapeutic target of glioma has not been pharmacologically verified yet. In this study we developed a high-throughput screening and discovered that NG52, previously known as a yeast cell cycle-regulating kinase inhibitor, could inhibit the kinase activity of PGK1 (the IC50 = 2.5 ± 0.2 μM). We showed that NG52 dose-dependently inhibited the proliferation of glioma U87 and U251 cell lines with IC50 values of 7.8 ± 1.1 and 5.2 ± 0.2 μM, respectively, meanwhile it potently inhibited the proliferation of primary glioma cells. We further revealed that NG52 (12.5-50 μM) effectively inhibited the phosphorylation of PDHK1 at Thr338 site and the phosphorylation of PDH at Ser293 site in U87 and U251 cells, resulting in more pyruvic acid entering the Krebs cycle with increased production of ATP and ROS. Therefore, NG52 could reverse the Warburg effect by inhibiting PGK1 kinase activity, and switched cellular glucose metabolism from anaerobic mode to aerobic mode. In nude mice bearing patient-derived glioma xenograft, oral administration of NG52 (50, 100, 150 mg· kg-1·d-1, for 13 days) dose-dependently suppressed the growth of glioma xenograft. Together, our results demonstrate that targeting PGK1 kinase activity might be a potential strategy for glioma treatment.
Insights
NG52, a novel inhibitor of phosphoglycerate kinase 1 (PGK1), effectively combats glioma by reversing the Warburg effect. This drug restores aerobic respiration, suppresses tumor growth in preclinical models, and shows potential as a glioma therapeutic.
Area of Science:
- Biochemistry
- Oncology
- Pharmacology
Background:
- Cancer cells exhibit altered metabolism, relying heavily on glycolysis (Warburg effect) over oxidative phosphorylation.
- Phosphoglycerate kinase 1 (PGK1) is implicated in this metabolic shift, and its inhibition may reverse the Warburg effect in glioma.
- Pharmacological validation of PGK1 as a therapeutic target for glioma is lacking due to the absence of specific small molecule inhibitors.
Purpose of the Study:
- To identify and characterize small molecule inhibitors of PGK1 kinase activity.
- To evaluate the therapeutic potential of PGK1 inhibition in glioma treatment.
- To elucidate the mechanism by which PGK1 inhibition affects glioma cell metabolism and proliferation.
Main Methods:
- High-throughput screening was employed to discover PGK1 kinase inhibitors.
- NG52, a known yeast kinase inhibitor, was identified and its inhibitory activity against PGK1 was determined (IC50 = 2.5 μM).
- The effects of NG52 on glioma cell lines (U87, U251) and patient-derived glioma cells were assessed, including proliferation, metabolic changes, and downstream signaling pathways. In vivo efficacy was evaluated in nude mice bearing patient-derived glioma xenografts.
Main Results:
- NG52 demonstrated potent inhibition of PGK1 kinase activity.
- NG52 dose-dependently inhibited the proliferation of various glioma cell lines and primary glioma cells.
- NG52 treatment led to the inhibition of PDHK1 and PDH phosphorylation, promoting pyruvic acid entry into the Krebs cycle, increasing ATP and ROS production, and reversing the Warburg effect.
- NG52 administration suppressed glioma xenograft growth in vivo.
Conclusions:
- NG52 is a potent inhibitor of PGK1 kinase activity.
- Targeting PGK1 with NG52 reverses the Warburg effect in glioma cells by restoring aerobic respiration.
- NG52 exhibits significant anti-glioma efficacy in preclinical models, highlighting PGK1 as a promising therapeutic target for glioma treatment.

