The AMPK inhibitor compound C is a potent AMPK-independent antiglioma agent
Xiaona Liu1, Rishi Raj Chhipa, Ichiro Nakano
1Corresponding Author: Biplab Dasgupta, Department of Oncology, Cincinnati Children's Hospital Medical Center, 3333 Burnet Avenue, Cincinnati, OH 45229. Biplab.dasgupta@cchmc.org.
Abstract:
AMP-activated protein kinase (AMPK) is an evolutionarily conserved energy sensor important for cell growth, proliferation, survival, and metabolic regulation. Active AMPK inhibits biosynthetic enzymes like mTOR and acetyl CoA carboxylase (required for protein and lipid synthesis, respectively) to ensure that cells maintain essential nutrients and energy during metabolic crisis. Despite our knowledge about this incredibly important kinase, no specific chemical inhibitors are available to examine its function. However, one small molecule known as compound C (also called dorsomorphin) has been widely used in cell-based, biochemical, and in vivo assays as a selective AMPK inhibitor. In nearly all these reports including a recent study in glioma, the biochemical and cellular effects of compound C have been attributed to its inhibitory action toward AMPK. While examining the status of AMPK activation in human gliomas, we observed that glioblastomas express copious amount of active AMPK. Compound C effectively reduced glioma viability in vitro both by inhibiting proliferation and inducing cell death. As expected, compound C inhibited AMPK; however, all the antiproliferative effects of this compound were AMPK independent. Instead, compound C killed glioma cells by multiple mechanisms, including activation of the calpain/cathepsin pathway, inhibition of AKT, mTORC1/C2, cell-cycle block at G2-M, and induction of necroptosis and autophagy. Importantly, normal astrocytes were significantly less susceptible to compound C. In summary, compound C is an extremely potent antiglioma agent but we suggest that caution should be taken in interpreting results when this compound is used as an AMPK inhibitor.
Insights
Compound C effectively kills glioma cells by multiple mechanisms, independent of AMP-activated protein kinase (AMPK) inhibition. Researchers caution against interpreting Compound C
Area of Science:
- Biochemistry
- Cell Biology
- Oncology
Background:
- AMP-activated protein kinase (AMPK) is a critical energy sensor regulating cell metabolism and growth.
- Compound C (dorsomorphin) is widely used as a selective AMPK inhibitor in research.
- The precise mechanisms of Compound C's effects, particularly in cancer, require further elucidation.
Purpose of the Study:
- To investigate the effects of Compound C on human glioma cells.
- To determine whether Compound C's anti-glioma activity is mediated through AMPK inhibition.
- To identify the specific molecular pathways targeted by Compound C in gliomas.
Main Methods:
- In vitro cell-based assays using human glioma cell lines and normal astrocytes.
- Biochemical assays to assess AMPK activation and inhibition.
- Analysis of cell viability, proliferation, cell death pathways (necroptosis, autophagy), cell cycle progression, and signaling pathways (AKT, mTORC1/C2, calpain/cathepsin).
Main Results:
- Compound C significantly reduced glioma cell viability by inhibiting proliferation and inducing cell death.
- While Compound C inhibited AMPK, its anti-glioma effects were found to be AMPK-independent.
- Compound C induced glioma cell death through calpain/cathepsin activation, AKT and mTORC1/C2 inhibition, G2-M cell cycle arrest, necroptosis, and autophagy.
- Normal astrocytes exhibited significantly lower susceptibility to Compound C compared to gliomas.
Conclusions:
- Compound C is a potent anti-glioma agent, but its effects are not solely due to AMPK inhibition.
- The anti-cancer mechanisms of Compound C involve multiple pathways beyond AMPK.
- Caution is advised when interpreting Compound C's effects as solely mediated by AMPK inhibition in glioma research.
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