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Trivanillic polyphenols with anticancer cytostatic effects through the targeting of multiple kinases and
Delphine Lamoral-Theys1, Nathalie Wauthoz, Petra Heffeter
1Laboratoire de Chimie BioAnalytique, Toxicologie et Chimie Physique Appliquée, Brussels, Belgium.
Abstract:
Cancer cells exhibit de-regulation of multiple cellular signalling pathways and treatments of various types of cancers with polyphenols are promising. We recently reported the synthesis of a series of 33 novel divanillic and trivanillic polyphenols that displayed anticancer activity, at least in vitro, through inhibiting various kinases. This study revealed that minor chemical modifications of a trivanillate scaffold could convert cytotoxic compounds into cytostatic ones. Compound 13c, a tri-chloro derivative of trivanillic ester, displayed marked inhibitory activities against FGF-, VEGF-, EGF- and Src-related kinases, all of which are implicated not only in angiogenesis but also in the biological aggressiveness of various cancer types. The pan-anti-kinase activity of 13c occurs at less than one-tenth of its mean IC(50) in vitro growth inhibitory concentrations towards a panel of 12 cancer cell lines. Of the 26 kinases for which 13c inhibited their activity by >75%, eight (Yes, Fyn, FGF-R1, EGFR, Btk, Mink, Ret and Itk) are implicated in control of the actin cytoskeleton organization to varying degrees. Compound 13c accordingly impaired the typical organization of the actin cytoskeleton in human U373 glioblastoma cells. The pan-anti-kinase activity and actin cytoskeleton organization impairment provoked by 13c concomitantly occurs with calcium homeostasis impairment but without provoking MDR phenotype activation. All of these anticancer properties enabled 13c to confer therapeutic benefits in vivo in a mouse melanoma pseudometastatic lung model. These data argue in favour of further chemically modifying trivanillates to produce novel and potent anticancer drugs.
Insights
Novel trivanillate polyphenols show promise as anticancer drugs. Compound 13c inhibits multiple kinases, disrupts actin cytoskeleton, and shows therapeutic benefits in vivo, offering a new avenue for cancer treatment.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Cancer Research
Background:
- Cancer involves dysregulated cellular signaling pathways.
- Polyphenols are promising anticancer agents.
- Previous work synthesized novel divanillic and trivanillic polyphenols with anticancer activity.
Purpose of the Study:
- To investigate the anticancer potential of novel trivanillate derivatives.
- To explore the mechanism of action of a specific compound, 13c.
- To evaluate the in vivo efficacy of compound 13c.
Main Methods:
- Synthesis of 33 novel divanillic and trivanillic polyphenols.
- In vitro kinase inhibition assays.
- Cancer cell line growth inhibition assays.
- Actin cytoskeleton organization and calcium homeostasis studies.
- In vivo mouse melanoma pseudometastatic lung model.
Main Results:
- Compound 13c, a tri-chloro trivanillate derivative, showed potent inhibition of FGF-, VEGF-, EGF-, and Src-related kinases.
- Pan-anti-kinase activity of 13c was observed at concentrations significantly lower than its in vitro growth inhibitory concentrations.
- Compound 13c impaired actin cytoskeleton organization and calcium homeostasis in U373 glioblastoma cells without inducing MDR.
- Compound 13c demonstrated therapeutic benefits in a mouse melanoma lung metastasis model.
Conclusions:
- Minor modifications to trivanillate scaffolds can convert cytotoxic to cytostatic compounds.
- Compound 13c exhibits multi-targeted anti-cancer properties, including kinase inhibition and cytoskeleton disruption.
- Trivanillate derivatives, like compound 13c, represent a promising class of novel anticancer drug candidates.
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