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Published on: August 17, 2019
ENOblock Does Not Inhibit the Activity of the Glycolytic Enzyme Enolase
Nikunj Satani1,2, Yu-Hsi Lin2, Naima Hammoudi2
1Department of Neurology, McGovern Medical School, UTHealth, Houston, TX, United States of America.
Abstract:
Inhibition of glycolysis is of great potential for the treatment of cancer. However, inhibitors of glycolytic enzymes with favorable pharmacological profiles have not been forthcoming. Due to the nature of their active sites, most high-affinity transition-state analogue inhibitors of glycolysis enzymes are highly polar with poor cell permeability. A recent publication reported a novel, non-active site inhibitor of the glycolytic enzyme Enolase, termed ENOblock (N-[2-[2-2-aminoethoxy)ethoxy]ethyl]4-4-cyclohexylmethyl)amino]6-4-fluorophenyl)methyl]amino]1,3,5-triazin-2-yl]amino]benzeneacetamide). This would present a major advance, as this is heterocyclic and fully cell permeable molecule. Here, we present evidence that ENOblock does not inhibit Enolase enzymatic activity in vitro as measured by three different assays, including a novel 31P NMR based method which avoids complications associated with optical interferences in the UV range. Indeed, we note that due to strong UV absorbance, ENOblock interferes with the direct spectrophotometric detection of the product of Enolase, phosphoenolpyruvate. Unlike established Enolase inhibitors, ENOblock does not show selective toxicity to ENO1-deleted glioma cells in culture. While our data do not dispute the biological effects previously attributed to ENOblock, they indicate that such effects must be caused by mechanisms other than direct inhibition of Enolase enzymatic activity.
Insights
ENOblock, a potential cancer treatment, does not inhibit the Enolase enzyme. Its observed biological effects likely stem from mechanisms unrelated to direct Enolase inhibition, challenging previous assumptions.
Area of Science:
- Biochemistry
- Cancer Biology
- Pharmacology
Background:
- Glycolysis inhibition is a promising cancer treatment strategy.
- Developing effective glycolytic enzyme inhibitors with good cell permeability is challenging.
- ENOblock was reported as a novel, cell-permeable, non-active site Enolase inhibitor.
Purpose of the Study:
- To investigate the direct inhibitory effect of ENOblock on Enolase enzymatic activity.
- To validate the proposed mechanism of action for ENOblock.
- To assess the specificity and cellular effects of ENOblock.
Main Methods:
- In vitro enzymatic assays to measure Enolase activity.
- A novel 31P Nuclear Magnetic Resonance (NMR) based assay.
- Assessment of selective toxicity in ENO1-deleted glioma cells.
Main Results:
- ENOblock did not inhibit Enolase activity across three different assays.
- ENOblock's UV absorbance interfered with spectrophotometric detection of phosphoenolpyruvate.
- ENOblock lacked selective toxicity towards ENO1-deleted glioma cells.
Conclusions:
- ENOblock does not directly inhibit Enolase enzymatic activity in vitro.
- The previously reported biological effects of ENOblock are not mediated by direct Enolase inhibition.
- Alternative mechanisms must be responsible for ENOblock's observed cellular effects.
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