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Functionalized Spirocyclic Heterocycle Synthesis and Cytotoxicity Assay
Published on: February 9, 2021
Synthesis and Characterization of Sulfonamide-Imidazole Hybrids with In Vitro Antiproliferative Activity against
Valdas Vainauskas1, Povilas Kavaliauskas1,2,3,4, Birutė Grybaitė1
1Department of Organic Chemistry, Kaunas University of Technology, Radvilėnų Rd. 19, LT-50254, Kaunas, Lithuania.
Abstract:
A series of novel sulfonamide-imidazole hybrid derivatives are synthesized, and their antiproliferative properties are evaluated. The global challenge of cancer, highlighted by rising morbidity and mortality rates, is further intensified by the increasing prevalence of drug-resistant cancer cells. Targeting the molecular mechanisms underlying therapeutic resistance is crucial for the development of innovative treatment strategies to improve clinical outcomes. Herein, the in vitro antiproliferative activity of novel sulfonamide derivatives, which exhibited significant low micromolar cytotoxicity against H69 human lung carcinoma cells and anthracycline-resistant H69AR cells compared to untreated controls (p < 0.05), is synthesized and characterized. The most promising compounds (11e, 11g, 11h, 12) also demonstrate cytotoxic activity against A549 human lung adenocarcinoma cells. Molecular docking studies predict that compound 11e interacts with tropomyosin receptor kinase A (TRKA) and mesenchymal-epithelial transition factor (c-MET) at conserved binding sites also targeted by FDA-approved inhibitors. These findings suggest that the novel sulfonamide derivatives, particularly compound 11e, may serve as promising antiproliferative candidates targeting TRKA and c-MET, potentially contributing to strategies aimed at overcoming drug resistance. Moreover, compound 11e can serve as a structural scaffold for future hit-to-lead optimization efforts.
Insights
Novel sulfonamide-imidazole hybrids show potent antiproliferative activity against lung cancer cells, including drug-resistant types. Compound 11e targets key cancer pathways, offering a potential strategy to overcome therapeutic resistance.
Area of Science:
- Medicinal Chemistry
- Oncology
- Drug Discovery
Background:
- Cancer presents a significant global health challenge, exacerbated by rising drug resistance.
- Developing novel therapeutic strategies is critical to improve patient outcomes.
- Targeting molecular mechanisms of resistance is key for innovative cancer treatments.
Purpose of the Study:
- To synthesize and evaluate novel sulfonamide-imidazole hybrid derivatives for antiproliferative activity.
- To identify compounds effective against both sensitive and anthracycline-resistant lung cancer cells.
- To explore the molecular targets of promising drug candidates.
Main Methods:
- Synthesis and characterization of sulfonamide-imidazole hybrid derivatives.
- In vitro antiproliferative assays against H69, H69AR, and A549 human lung cancer cell lines.
- Molecular docking studies to predict interactions with target proteins.
Main Results:
- Novel sulfonamide derivatives exhibited significant low micromolar cytotoxicity against H69 and H69AR cells (p < 0.05).
- Compounds 11e, 11g, 11h, and 12 showed cytotoxic effects on A549 cells.
- Molecular docking indicated compound 11e interacts with tropomyosin receptor kinase A (TRKA) and c-MET.
Conclusions:
- The synthesized sulfonamide derivatives, particularly compound 11e, demonstrate promising antiproliferative potential.
- Compound 11e may overcome drug resistance by targeting TRKA and c-MET.
- These compounds serve as valuable scaffolds for developing new anticancer agents.
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