Jacaric Acid Empowers RSL3-Induced Ferroptotic Cell Death in Two- and Three-Dimensional Breast Cancer Cell Models
Géraldine Cuvelier1, Perrine Vermonden1, Pauline Debisschop1
1Louvain Institute of Biomolecular Science and Technology, UCLouvain, 1348 Louvain-la-Neuve, Belgium.
Abstract:
Ferroptosis has recently emerged as a promising strategy to combat therapy-resistant cancers. As lipid peroxidation is a key trigger of ferroptotic cell death, enhancing cancer cell susceptibility through the supply of highly peroxidisable fatty acids represents a novel therapeutic approach. Conjugated linolenic acids (CLnAs) fulfill this requirement, exhibiting a peroxidation propagation rate eight times higher than their non-conjugated counterpart, α-linolenic acid. This study evaluates jacaric acid (JA), a plant-derived CLnA, as a ferroptotic inducer, both as a monotherapy and in combination with RAS-selective lethal 3 (RSL3), a canonical ferroptosis inducer, in 2D and 3D breast cancer cell models. JA treatment significantly reduced cell viability across all models, primarily through lipid peroxidation driven by JA incorporation into cellular lipids rather than alterations in anti-ferroptotic gene expression. Moreover, JA synergistically enhanced RSL3 cytotoxicity under 2D and several 3D conditions. Similar effects were observed with punicic acid, another plant-derived CLnA isomer. Our study exploits a common feature of cancer metabolism, increased fatty acid uptake, to turn it into a vulnerability. The incorporation of JA into breast cancer cells creates a highly peroxidisable environment that increases cancer cell sensitivity to RSL3, potentially reducing required doses and minimising side effects.
Insights
Jacaric acid (JA), a plant-derived fatty acid, induces ferroptosis in breast cancer cells by increasing lipid peroxidation. JA enhances the efficacy of ferroptosis inducer RSL3, offering a novel therapeutic strategy.
Area of Science:
- Oncology
- Biochemistry
- Cancer Therapeutics
Background:
- Ferroptosis, a form of regulated cell death, is a promising strategy against therapy-resistant cancers.
- Lipid peroxidation is a key trigger for ferroptosis, suggesting that enhancing cancer cell susceptibility to it is a viable therapeutic approach.
- Conjugated linolenic acids (CLnAs) are highly peroxidisable fatty acids that can increase susceptibility to ferroptosis.
Purpose of the Study:
- To evaluate jacaric acid (JA), a plant-derived CLnA, as a ferroptosis inducer in breast cancer.
- To assess JA as a monotherapy and in combination with the ferroptosis inducer RSL3.
- To investigate the mechanism of JA-induced ferroptosis in 2D and 3D breast cancer models.
Main Methods:
- Treatment of 2D and 3D breast cancer cell models with jacaric acid (JA) and RAS-selective lethal 3 (RSL3).
- Assessment of cell viability and lipid peroxidation levels.
- Analysis of anti-ferroptotic gene expression.
Main Results:
- JA treatment significantly reduced breast cancer cell viability across all models.
- JA-induced cell death was primarily driven by lipid peroxidation due to JA incorporation into cellular lipids.
- JA synergistically enhanced RSL3 cytotoxicity in both 2D and 3D models, an effect also observed with punicic acid.
Conclusions:
- Plant-derived CLnAs like JA can be effectively used to induce ferroptosis in breast cancer cells.
- JA exploits cancer's increased fatty acid uptake, turning it into a vulnerability by creating a highly peroxidisable environment.
- Combining JA with RSL3 enhances therapeutic efficacy, potentially reducing drug dosage and side effects.
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