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Published on: January 18, 2017
Breast cancer stem cell selectivity of synthetic nanomolar-active salinomycin analogs
Xiaoli Huang1, Björn Borgström2, Sebastian Kempengren3
1Department of Biology, Lund University, Lund, Sweden. xiaoli.huang@biol.lu.se.
Background:
Cancer stem cells (CSCs) have been invoked in resistance, recurrence and metastasis of cancer. Consequently, curative cancer treatments may be contingent on CSC selective approaches. Of particular interest in this respect is the ionophore salinomycin, a natural product shown to be 100-fold more active against CSCs than clinically used paclitaxel. We have previously reported that synthetic salinomycin derivatives display increased activity against breast cancer cell lines. Herein we specifically investigate the CSC selectivity of the most active member in each class of C20-O-acylated analogs as well as a C1-methyl ester analog incapable of charge-neutral metal ion transport.
Methods:
JIMT-1 breast cancer cells were treated with three C20-O-acylated analogs, the C1-methyl ester of salinomycin, and salinomycin. The effects of treatment on the CSC-related CD44(+)/CD24(-) and the aldehyde dehydrogenase positive (ALDH(+)) populations were determined using flow cytometry. The survival ability of CSCs after treatment was investigated with a colony formation assay under serum free conditions. The effect of the compounds on cell migration was evaluated using wound-healing and Boyden chamber assays. The expression of vimentin, related to mesenchymal traits and expression of E-cadherin and β-catenin, related to the epithelial traits, were investigated using immunofluorescence microscopy.
Results:
Treatment with each of the three C20-acylated analogs efficiently decreased the putative CSC population as reflected by reduction of the CD44(+)/CD24(-) and ALDH(+) populations already at a 50 nM concentration. In addition, colony forming efficiency and cell migration were reduced, and the expression of the epithelial markers E-cadherin and β-catenin at the cell surface were increased. In contrast, salinomycin used at the same concentration did not significantly influence the CSC population and the C1-methyl ester was inactive even at a 20 μM concentration.
Conclusions:
Synthetic structural analogs of salinomycin, previously shown to exhibit increased activity against cancer cells, also exhibited improved activity against CSCs across several assays even at nanomolar concentrations where salinomycin was found inactive. The methyl ester analog of salinomycin, incapable of charge-neutral metal ion transport, did not show activity in CSC assays, lending experimental support to ionophoric stress as the molecular initiating event for the CSC effects of salinomycin and related structures.
Insights
Synthetic salinomycin analogs effectively target cancer stem cells (CSCs) by reducing their populations and inhibiting migration. This ionophore-dependent activity offers a promising avenue for developing novel cancer therapies.
Area of Science:
- Oncology
- Medicinal Chemistry
- Cell Biology
Background:
- Cancer stem cells (CSCs) are implicated in cancer recurrence, metastasis, and treatment resistance.
- Salinomycin, a natural ionophore, demonstrates potent activity against CSCs, exceeding that of paclitaxel.
- Synthetic salinomycin derivatives have shown enhanced efficacy against breast cancer cell lines.
Purpose of the Study:
- To investigate the CSC selectivity of synthetic salinomycin derivatives, specifically C20-O-acylated analogs and a C1-methyl ester analog.
- To evaluate the impact of these analogs on CSC populations, survival, and migratory potential.
- To elucidate the mechanism of action, particularly the role of ionophoric activity.
Main Methods:
- Treatment of JIMT-1 breast cancer cells with synthetic salinomycin analogs and salinomycin.
- Flow cytometry analysis to quantify CSC populations (CD44+/CD24- and ALDH+).
- Colony formation, wound-healing, and Boyden chamber assays to assess CSC survival and migration.
- Immunofluorescence microscopy to evaluate epithelial and mesenchymal markers.
Main Results:
- C20-O-acylated salinomycin analogs significantly reduced CSC populations (CD44+/CD24- and ALDH+) at nanomolar concentrations.
- These analogs decreased colony formation and cell migration while increasing epithelial markers (E-cadherin, β-catenin).
- Salinomycin showed minimal effect on CSCs at the same concentration, and the C1-methyl ester analog was inactive, suggesting ionophore activity is crucial.
Conclusions:
- Synthetic salinomycin analogs exhibit potent and selective activity against CSCs, outperforming the parent compound.
- The observed CSC-targeting effects are dependent on the ionophoric properties of salinomycin and its analogs.
- These findings support the development of ionophore-based strategies for targeting CSCs in cancer treatment.
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