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In Vitro Characterization of the Pharmacological Properties of the Anti-Cancer Chelator, Bp4eT, and Its Phase I Metabolites. | LitMetric

AI Article Synopsis

  • Cancer cells require high levels of iron, and studies suggest that iron chelators could serve as effective anti-cancer agents, with Bp4eT showing strong anti-cancer and anti-viral properties.
  • Bp4eT was found to be highly effective against various cancer cell lines, inducing apoptosis and cell cycle arrest, while its metabolites (semicarbazone and amidrazone) demonstrated significantly reduced cytotoxic effects.
  • The study highlights how Bp4eT is metabolized into less active compounds, underscoring its potential in cancer treatment and providing insights into the relationship between the structure and activity of anti-cancer agents.

Article Abstract

Cancer cells have a high iron requirement and many experimental studies, as well as clinical trials, have demonstrated that iron chelators are potential anti-cancer agents. The ligand, 2-benzoylpyridine 4-ethyl-3-thiosemicarbazone (Bp4eT), demonstrates both potent anti-neoplastic and anti-retroviral properties. In this study, Bp4eT and its recently identified amidrazone and semicarbazone metabolites were examined and compared with respect to their anti-proliferative activity towards cancer cells (HL-60 human promyelocytic leukemia, MCF-7 human breast adenocarcinoma, HCT116 human colon carcinoma and A549 human lung adenocarcinoma), non-cancerous cells (H9c2 neonatal rat-derived cardiomyoblasts and 3T3 mouse embryo fibroblasts) and their interaction with intracellular iron pools. Bp4eT was demonstrated to be a highly potent and selective anti-neoplastic agent that induces S phase cell cycle arrest, mitochondrial depolarization and apoptosis in MCF-7 cells. Both semicarbazone and amidrazone metabolites showed at least a 300-fold decrease in cytotoxic activity than Bp4eT towards both cancer and normal cell lines. The metabolites also lost the ability to: (1) promote the redox cycling of iron; (2) bind and mobilize iron from labile intracellular pools; and (3) prevent 59Fe uptake from 59Fe-labeled transferrin by MCF-7 cells. Hence, this study demonstrates that the highly active ligand, Bp4eT, is metabolized to non-toxic and pharmacologically inactive analogs, which most likely contribute to its favorable pharmacological profile. These findings are important for the further development of this drug candidate and contribute to the understanding of the structure-activity relationships of these agents.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4604124PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0139929PLOS

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