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Masked Phenolic-Selenium Conjugates: Potent and Selective Antiproliferative Agents Overcoming P-gp Resistance
Paloma Begines1, Lucía Sevilla-Horrillo2, Adrián Puerta3
1Departamento de Química Orgánica, Facultad de Química, Universidad de Sevilla, Apartado 1203, E-41071 Seville, Spain.
Abstract:
Cancer accounts for one of the most complex diseases nowadays due to its multifactorial nature. Despite the vast number of cytotoxic agents developed so far, good therapeutic approaches are not always reached. In recent years, multitarget drugs are gaining great attention against multifactorial diseases in contraposition to polypharmacy. Herein we have accomplished the conjugation of phenolic derivatives with an ample number of organochalcogen motifs with the aim of developing novel antiproliferative agents. Their antioxidant, and antiproliferative properties (against six tumour and one non-tumour cell lines) were analysed. Moreover, in order to predict P-gp-mediated chemoresistance, the P-glycoprotein assay was also conducted in order to determine whether compounds prepared herein could behave as substrates of that glycoprotein. Selenium derivatives were found to be significantly stronger antiproliferative agents than their sulfur isosters. Moreover, the length and the nature of the tether, together with the nature of the organoselenium scaffold were also found to be crucial features in the observed bioactivities. The lead compound, bearing a methylenedioxyphenyl moiety, and a diselenide functionality, showed a good activity (GI50 = 0.88‒2.0 µM) and selectivity towards tumour cell lines (selectivity index: 14‒32); moreover, compounds considered herein were not substrates for the P-gp efflux pump, thus avoiding the development of chemoresistance coming from such mechanism, commonly found for widely-used chemotherapeutic agents.
Insights
Novel organochalcogen compounds show potent antiproliferative activity against cancer cells. Selenium derivatives demonstrate superior efficacy compared to sulfur analogs, offering a promising avenue for new cancer therapies.
Area of Science:
- Medicinal Chemistry
- Drug Discovery
- Cancer Biology
Background:
- Cancer's multifactorial nature necessitates innovative therapeutic strategies beyond traditional cytotoxic agents.
- Multitarget drugs are emerging as a promising alternative to polypharmacy for complex diseases.
- Developing novel antiproliferative agents with improved efficacy and selectivity is a critical unmet need.
Purpose of the Study:
- To synthesize and characterize novel organochalcogen derivatives of phenolic compounds.
- To evaluate the antioxidant and antiproliferative properties of these novel compounds against various cancer cell lines.
- To assess the potential of these compounds to overcome P-glycoprotein-mediated chemoresistance.
Main Methods:
- Synthesis of phenolic derivatives conjugated with organochalcogen motifs (selenium and sulfur).
- In vitro evaluation of antioxidant and antiproliferative activity against six tumor and one non-tumor cell line.
- P-glycoprotein assay to determine substrate potential and predict chemoresistance evasion.
Main Results:
- Selenium-containing compounds exhibited significantly stronger antiproliferative effects than their sulfur counterparts.
- The length and nature of the tether, along with the organoselenium scaffold, influenced bioactivity.
- A lead compound with a methylenedioxyphenyl moiety and diselenide functionality showed potent activity (GI50 = 0.88–2.0 µM) and selectivity (SI = 14–32).
- The tested compounds were not substrates for the P-gp efflux pump, suggesting they can avoid P-gp-mediated chemoresistance.
Conclusions:
- Novel organochalcogen compounds, particularly selenium derivatives, possess significant antiproliferative and anticancer potential.
- Structural modifications, including the tether and organoselenium scaffold, are key determinants of efficacy and selectivity.
- These compounds represent promising candidates for developing new chemotherapeutic agents that circumvent P-gp-mediated drug resistance.
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