Structure-based design, synthesis, and evaluation of the biological activity of novel phosphoroorganic small molecule
Agnieszka Łupicka-Słowik1, Mateusz Psurski2, Renata Grzywa1
1Faculty of Chemistry, Department of Organic and Medicinal Chemistry, Wrocław University of Science and Technology, Wybrzeże Wyspiańskiego 27, 50-370, Wrocław, Poland.
Abstract:
One of the strategies employed by novel anticancer therapies is to put the process of apoptosis back on track by blocking the interaction between inhibitor of apoptosis proteins (IAPs) and caspases. The activity of caspases is modulated by the caspases themselves in a caspase/procaspase proteolytic cascade and by their interaction with IAPs. Caspases can be released from the inhibitory influence of IAPs by proapoptotic proteins such as secondary mitochondrial activator of caspases (Smac) that share an IAP binding motif (IBM). The main purpose of the present study was the design and synthesis of phosphorus-based peptidyl antagonists of IAPs that mimic the endogenous Smac protein, which blocks the interaction between IAPs and caspases. Based on the structure of the IAP antagonist and recently reported thiadiazole derivatives, we designed and evaluated the biochemical properties of a series of phosphonic peptides bearing the N-Me-Ala-Val/Chg-Pro-OH motif (Chg: cyclohexylglycine). The ability of the obtained compounds to interact with the binding groove of the X-linked inhibitor of apoptosis protein baculovirus inhibitor of apoptosis protein repeat (XIAP BIR3) domain was examined by a fluorescence polarization assay, while their potential to induce autoubiquitination followed by proteasomal degradation of cellular IAP1 was examined using the MDA-MB-231 breast cancer cell line. The highest potency against BIR3 was observed among peptides containing C-terminal phosphonic phenylalanine analogs, which displayed nanomolar Ki values. Their antiproliferative potential as well as their proapoptotic action, manifested by an increase in caspase-3 activity, was examined using various cell lines.
Insights
Novel anticancer drugs target inhibitor of apoptosis proteins (IAPs) by designing phosphorus-based peptides that mimic Smac protein, blocking IAP-caspase interactions and restoring apoptosis for cancer therapy.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Molecular Biology
Background:
- Anticancer therapies aim to restore apoptosis by inhibiting interactions between IAPs and caspases.
- Caspase activity is regulated by self-proteolysis and IAP binding.
- Proapoptotic proteins like Smac release caspases from IAPs via IAP binding motifs (IBMs).
Purpose of the Study:
- Design and synthesize phosphorus-based peptidyl antagonists of IAPs.
- Mimic the endogenous Smac protein to block IAP-caspase interactions.
- Evaluate the biochemical and antiproliferative properties of novel compounds.
Main Methods:
- Design of phosphonic peptides based on IAP antagonist structure and thiadiazole derivatives.
- Fluorescence polarization assay to assess binding to XIAP BIR3 domain.
- MDA-MB-231 breast cancer cell line used to evaluate IAP1 degradation and antiproliferative/proapoptotic effects.
Main Results:
- Synthesized phosphonic peptides bearing the N-Me-Ala-Val/Chg-Pro-OH motif.
- Identified C-terminal phosphonic phenylalanine analogs with high potency (nanomolar Ki values) against XIAP BIR3.
- Demonstrated antiproliferative and proapoptotic effects, indicated by increased caspase-3 activity in cancer cell lines.
Conclusions:
- Phosphorus-based peptidyl antagonists effectively mimic Smac function.
- Novel compounds show potent inhibition of IAP-caspase interactions.
- These antagonists hold promise as anticancer agents by restoring apoptosis.
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