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Novel glyoxalase-I inhibitors possessing a "zinc-binding feature" as potential anticancer agents
Qosay A Al-Balas1, Mohammad A Hassan1, Nizar A Al-Shar'i1
1Department of Medicinal Chemistry and Pharmacognosy.
Background:
The glyoxalase system including two thiol-dependent enzymes, glyoxalase I (Glo-I) and glyoxalase II, plays an important role in a ubiquitous metabolic pathway involved in cellular detoxification of cytotoxic 2-oxoaldehydes. Tumor cells have high glycolytic activity, leading to increased cellular levels of these toxic metabolites. The increased activity of the detoxification system in cancerous cells makes this pathway a viable target for developing novel anticancer agents. In this study, we examined the potential utility of non-glutathione-based inhibitors of the Glo-I enzyme as novel anticancer drugs.
Methods:
Computer-aided drug design techniques, such as customized pharmacophoric features, virtual screening, and flexible docking, were used to achieve the project goals. Retrieved hits were extensively filtered and subsequently docked into the active site of the enzyme. The biological activities of retrieved hits were assessed using an in vitro assay against Glo-I.
Results:
Since Glo-I is a zinc metalloenzyme, a customized Zn-binding pharmacophoric feature was used to search for selective inhibitors via virtual screening of a small-molecule database. Seven hits were selected, purchased, and biologically evaluated. Three of the seven hits inhibited Glo-I activity, the most effective of which exerted 76.4% inhibition at a concentration of 25 µM.
Conclusion:
We successfully identified a potential Glo-I inhibitor that can serve as a lead compound for further optimization. Moreover, our in silico and experimental results were highly correlated. Hence, the docking protocol adopted in this study may be efficiently employed in future optimization steps.
Insights
Researchers identified a novel glyoxalase I (Glo-I) inhibitor using computational drug design. This potential anticancer drug candidate shows promise for further development in cancer therapy.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Pharmacology
Background:
- The glyoxalase system, comprising glyoxalase I (Glo-I) and glyoxalase II, is crucial for detoxifying cytotoxic 2-oxoaldehydes.
- Elevated glycolytic activity in tumor cells increases these toxic metabolites, making the glyoxalase pathway a target for anticancer drug development.
Purpose of the Study:
- To explore non-glutathione-based inhibitors of glyoxalase I (Glo-I) as novel anticancer agents.
- To utilize computer-aided drug design to identify potential Glo-I inhibitors.
Main Methods:
- Employed computer-aided drug design, including pharmacophoric features, virtual screening, and flexible docking.
- Filtered virtual screening hits and docked them into the Glo-I active site.
- Assessed biological activities of selected compounds using in vitro assays against Glo-I.
Main Results:
- A customized zinc-binding pharmacophoric feature was used for virtual screening.
- Seven potential inhibitors were identified, purchased, and evaluated.
- Three compounds inhibited Glo-I activity, with the most effective showing 76.4% inhibition at 25 µM.
Conclusions:
- A promising Glo-I inhibitor was identified as a lead compound for further optimization.
- In silico and experimental results demonstrated high correlation.
- The adopted docking protocol is suitable for future optimization steps.
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