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Updated: Mar 24, 2026

Studying Pancreatic Cancer Stem Cell Characteristics for Developing New Treatment Strategies
Published on: June 20, 2015
Cancer stem cell drugs target K-ras signaling in a stemness context
A K Najumudeen1, A Jaiswal2, B Lectez1
1Turku Centre for Biotechnology, Åbo Akademi University, Turku, Finland.
Abstract:
Cancer stem cells (CSCs) are considered to be responsible for treatment relapse and have therefore become a major target in cancer research. Salinomycin is the most established CSC inhibitor. However, its primary mechanistic target is still unclear, impeding the discovery of compounds with similar anti-CSC activity. Here, we show that salinomycin very specifically interferes with the activity of K-ras4B, but not H-ras, by disrupting its nanoscale membrane organization. We found that caveolae negatively regulate the sensitivity to this drug. On the basis of this novel mechanistic insight, we defined a K-ras-associated and stem cell-derived gene expression signature that predicts the drug response of cancer cells to salinomycin. Consistent with therapy resistance of CSC, 8% of tumor samples in the TCGA-database displayed our signature and were associated with a significantly higher mortality. Using our K-ras-specific screening platform, we identified several new candidate CSC drugs. Two of these, ophiobolin A and conglobatin A, possessed a similar or higher potency than salinomycin. Finally, we established that the most potent compound, ophiobolin A, exerts its K-ras4B-specific activity through inactivation of calmodulin. Our data suggest that specific interference with the K-ras4B/calmodulin interaction selectively inhibits CSC.
Insights
Salinomycin targets K-ras4B, a key driver of cancer stem cells (CSCs), by disrupting its membrane organization. This discovery aids in developing new drugs to combat cancer relapse and improve patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Cancer stem cells (CSCs) drive tumor recurrence and treatment resistance.
- Salinomycin is a known CSC inhibitor, but its precise molecular target remains elusive.
- Understanding salinomycin's mechanism is crucial for developing novel anti-CSC therapies.
Purpose of the Study:
- To elucidate the primary mechanistic target of salinomycin.
- To identify novel CSC inhibitors targeting K-ras4B.
- To develop a predictive biomarker for salinomycin response.
Main Methods:
- Investigated salinomycin's effect on K-ras4B and H-ras membrane organization.
- Assessed the role of caveolae in drug sensitivity.
- Developed and validated a K-ras-associated gene expression signature.
- Screened for new CSC drugs using a K-ras-specific platform.
Main Results:
- Salinomycin specifically disrupts K-ras4B nanoscale membrane organization, independent of H-ras.
- Caveolae negatively regulate sensitivity to salinomycin.
- A novel gene signature predicts salinomycin response and correlates with higher mortality in TCGA tumor samples.
- Ophiobolin A and conglobatin A identified as potent CSC inhibitors, with ophiobolin A acting via K-ras4B/calmodulin inactivation.
Conclusions:
- Salinomycin's anti-CSC activity stems from specific interference with K-ras4B.
- The K-ras4B/calmodulin interaction is a selective target for inhibiting CSCs.
- This research provides a new therapeutic strategy and predictive biomarker for CSC-driven cancers.
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