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Nitroimidazole derivatives potentiated against tumor hypoxia: Design, synthesis, antitumor activity, molecular
Aya M Almatary1,2, Walaa M El Husseiny1, Khalid B Selim1
1Department of Pharmaceutical Organic Chemistry, Faculty of Pharmacy, Mansoura University, Mansoura, Egypt.
Abstract:
A hypoxic environment occurs predominantly in tumors. During the growth phase of a tumor, it grows until it exceeds its blood supply, leaving regions of the tumor in which the oxygen pressure is dramatically low. They are virtually absent in normal tissues, thus creating perfect conditions for selective bioreductive therapy of tumors. To this aim, a novel series of cytotoxic radiosensitizer agents were synthesized by linking the nitroimidazole scaffold with oxadiazole or triazole rings. The majority of the compounds exhibited moderate to excellent antiproliferative activities toward HCT116 cell line under normoxic and hypoxic conditions. The structure-activity relationship study revealed that compounds containing the free thiol group either in the oxadiazoles 11a,b or the triazoles 21a,b-23a,b demonstrated the strongest antiproliferative activity, which proves that the free thiol group plays a crucial role in the antiproliferative activity of our compounds under both normoxic (half-maximal inhibitory concentration [IC50 ] = 12.50-24.39 µM) and hypoxic conditions (IC50 = 4.69-11.56 µM). Radiosensitizing assay of the four most active cytotoxic compounds 11b and 21-23b assured the capability of the compounds to enhance the sensitivity of the tumor cells to the DNA damaging activity of γ-radiation (IC50 = 2.23-5.18 µM). To further investigate if the cytotoxicity of our most active compounds was due to a specific signaling pathway, the online software SwissTargetPrediction was exploited and a molecular docking study was done that proposed cyclin-dependent kinase 2 (CDK2) enzyme to be the most promising target. The CDK2 inhibitory assay assured this assumption as five out of six compounds demonstrated a comparable inhibitory activity with roscovitine, among which compound 21b showed threefold more potent inhibitory activity in comparison with the reference compound. A further biological evaluation proved compound 21b to have an apoptotic activity and cell cycle arrest activity at the G1 and S phases. During the AutoQSAR analysis, the model demonstrated excellent regression between the predicted and experimental activity with r2 = 0.86. Subsequently, we used the model to predict the activity of the test set compounds that came with r2 = 0.95.
Insights
Novel nitroimidazole-based agents targeting hypoxic tumors show potent antiproliferative and radiosensitizing effects. The free thiol group is crucial for activity, with compound 21b identified as a promising cyclin-dependent kinase 2 (CDK2) inhibitor inducing apoptosis and cell cycle arrest.
Area of Science:
- Medicinal Chemistry
- Oncology
- Biochemistry
Background:
- Tumor hypoxia creates a unique microenvironment, distinct from normal tissues, making it a target for selective therapies.
- Bioreductive therapy offers a strategy to selectively target hypoxic tumor regions.
- Developing novel cytotoxic agents with radiosensitizing properties is crucial for improving cancer treatment efficacy.
Purpose of the Study:
- To synthesize and evaluate novel nitroimidazole-based compounds as potential cytotoxic and radiosensitizing agents for hypoxic tumors.
- To investigate the structure-activity relationships (SAR) of these compounds, focusing on the role of specific functional groups.
- To identify the molecular targets and mechanisms underlying the observed anticancer activities.
Main Methods:
- Synthesis of novel nitroimidazole derivatives linked with oxadiazole or triazole rings.
- In vitro antiproliferative assays under normoxic and hypoxic conditions against HCT116 cell line.
- Radiosensitizing assays, molecular docking studies, cyclin-dependent kinase 2 (CDK2) inhibition assays, and cell cycle/apoptosis analysis.
- Quantitative Structure-Activity Relationship (QSAR) analysis for predictive modeling.
Main Results:
- Most synthesized compounds displayed moderate to excellent antiproliferative activity in both normoxic and hypoxic conditions.
- Compounds featuring a free thiol group (11a,b and 21a,b-23a,b) exhibited the strongest antiproliferative effects.
- The most active compounds (11b, 21-23b) demonstrated significant radiosensitizing capabilities.
- Molecular docking and enzyme assays identified CDK2 as a promising target, with compound 21b showing superior inhibitory activity compared to roscovitine.
- Compound 21b induced apoptosis and cell cycle arrest at G1 and S phases.
- QSAR models showed excellent predictive accuracy for both experimental and test sets (r² = 0.86 and 0.95, respectively).
Conclusions:
- Novel nitroimidazole-oxadiazole/triazole hybrids are effective antiproliferative and radiosensitizing agents, particularly under hypoxic conditions.
- The presence of a free thiol group is critical for the observed biological activity.
- Compound 21b is a potent CDK2 inhibitor with significant anticancer potential, warranting further investigation for therapeutic development.
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