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Structure optimization of new tumor-selective Passerini α-acyloxy carboxamides as Caspase-3/7 activators
Mohammed Salah Ayoup1, Yasmin Wahby2, Hamida Abdel-Hamid2
1Chemistry Department, Faculty of Science, Alexandria University, P.O. Box 426, Alexandria, 21321, Egypt. mohammedsalahayoup@gmail.com.
Abstract:
Selective elimination of tumors has always been the mainstay of oncology research. The on-going research underlying the cellular apoptotic mechanisms reveal caspases activation, especially the key effector caspase-3, as a personalized tumor-selective therapeutic strategy. Our continued research protocol has exploited new optimized Passerini α-acyloxy carboxamides as efficient apoptotic inducers via caspase-3/7 dependent mechanism with highly selective anticancer profiles. The adopted design rationale relied on excluding structural alerts of previous leads, while merging various pharmacophoric motifs of natural and synthetic caspase activators via optimized one-pot Passerini reaction conditions. The prepared compounds resulting from Passerini reaction were screened for their cytotoxic activities against colorectal Caco-2 and liver HepG-2 cancer cells compared to normal fibroblasts utilizing MTT assay. Notably, all compounds exhibited promising low-range submicromolar IC50 against the studied cancer cell lines, with outstanding tumor selectivity (SI values up to 266). Hence, they were superior to 5-fluorouracil. Notably, 7a, 7g, and 7j conferred the highest potencies against Caco-2 and HepG-2 cells and were selected for further mechanistic studies. Caspas-3/7 activation assay of the hit compounds and flow cytometric analysis of the treated apoptotic cancer cells demonstrated their significant caspase activation potential (up to 4.2 folds) and apoptotic induction capacities (up to 58.7%). Further assessment of Bcl2 expression was performed being a physiological caspase-3 substrate. Herein, the three studied Passerini adducts were able to downregulate Bcl2 in the treated Caco-2 cells. Importantly, the mechanistic studies results of the three hits echoed their preliminary MTT antiproliferative potencies data highlighting their caspase-3 dependent apoptotic induction. Finally, the in silico predicted physicochemical and pharmacokinetic profiles, as well as ligand efficiency metrics were drug-like.
Insights
New Passerini compounds effectively induce apoptosis in cancer cells via caspase-3/7 activation, showing high tumor selectivity and potential as superior anticancer agents.
Area of Science:
- Oncology
- Medicinal Chemistry
- Molecular Biology
Background:
- Selective tumor elimination is a key goal in oncology.
- Caspase activation, particularly caspase-3, is a promising strategy for targeted cancer therapy.
- Previous research identified limitations in existing therapeutic leads.
Purpose of the Study:
- To develop novel Passerini α-acyloxy carboxamides as potent apoptotic inducers.
- To achieve highly selective anticancer profiles via caspase-3/7 dependent mechanisms.
- To optimize synthesis using one-pot Passerini reactions and incorporate pharmacophoric motifs.
Main Methods:
- Synthesis of novel Passerini adducts using optimized one-pot reactions.
- Cytotoxicity screening via MTT assay against colorectal (Caco-2) and liver (HepG-2) cancer cells versus normal fibroblasts.
- Mechanistic studies including caspase-3/7 activation assays, flow cytometry for apoptosis, and Bcl2 expression analysis.
- In silico prediction of physicochemical and pharmacokinetic properties.
Main Results:
- All synthesized compounds demonstrated submicromolar IC50 values against cancer cells with high tumor selectivity (SI up to 266), outperforming 5-fluorouracil.
- Compounds 7a, 7g, and 7j showed superior potency and were selected for further studies.
- These compounds significantly activated caspases-3/7 (up to 4.2-fold), induced apoptosis (up to 58.7%), and downregulated Bcl2 expression in Caco-2 cells.
- In silico analyses indicated favorable drug-like physicochemical and pharmacokinetic profiles.
Conclusions:
- Optimized Passerini adducts are effective inducers of caspase-3/7-dependent apoptosis in cancer cells.
- The developed compounds exhibit significant anticancer activity and high tumor selectivity, surpassing current standards.
- These novel compounds represent promising drug-like candidates for targeted cancer therapy.
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