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Ibuprofen mediates histone modification to diminish cancer cell stemness properties via a COX2-dependent manner
Wenzhi Shen1,2, Xiaoyuan Zhang3, Renle Du4
1Department of Pathology and Institute of Precision Medicine, Jining Medical University, Jining, 272067, China. shenwenzhi2011@126.com.
Background:
The anticancer potential of ibuprofen has created a broad interest to explore the clinical benefits of ibuprofen in cancer therapy. However, the current understanding of the molecular mechanisms involved in the anticancer potential of ibuprofen remains limited.
Methods:
Cancer stemness assays to validate ibuprofen function in vitro and in vivo. Histone modification assays to check the effect of ibuprofen on histone acetylation/methylation, as well as the activity of HDAC and KDM6A/B. Inhibitors' in vivo assays to evaluate therapeutic effects of various inhibitors' combination manners.
Results:
In our in vitro studies, we report that ibuprofen diminishes cancer cell stemness properties that include reducing the ALDH + subpopulation, side population and sphere formation in three cancer types. In our in vivo studies, we report that ibuprofen decreases tumour growth, metastasis and prolongs survival. In addition, our results showed that ibuprofen inhibits inflammation-related stemness gene expression (especially ICAM3) identified by a high-throughput siRNA platform. In regard to the underlying molecular mechanism of action, we report that ibuprofen reduces HDACs and histone demethylase (KDM6A/B) expression that mediates histone acetylation and methylation, and suppresses gene expression via a COX2-dependent way. In regard to therapeutic strategies, we report that ibuprofen combined HDAC/HDM inhibitors prevents cancer progression in vivo.
Conclusions:
The aforementioned findings suggest a molecular model that explains how ibuprofen diminishes cancer cell stemness properties. These may provide novel targets for therapeutic strategies involving ibuprofen in the prevention of cancer progression.
Insights
Ibuprofen reduces cancer stemness, tumor growth, and metastasis by inhibiting histone-modifying enzymes and inflammation-related genes. Combining ibuprofen with other inhibitors may prevent cancer progression.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Ibuprofen exhibits anticancer potential, sparking interest in its clinical applications for cancer therapy.
- The precise molecular mechanisms underlying ibuprofen's anticancer effects are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of ibuprofen's anticancer properties.
- To explore the impact of ibuprofen on cancer stemness and related gene expression.
- To evaluate combination therapeutic strategies involving ibuprofen.
Main Methods:
- In vitro and in vivo cancer stemness assays.
- Histone modification assays (acetylation/methylation) and analysis of HDAC and KDM6A/B activity.
- In vivo studies assessing tumor growth, metastasis, survival, and combination therapies.
Main Results:
- Ibuprofen diminished cancer stemness properties in vitro (ALDH+ subpopulation, side population, sphere formation).
- Ibuprofen reduced tumor growth, metastasis, and prolonged survival in vivo.
- Ibuprofen suppressed inflammation-related stemness genes (e.g., ICAM3) and reduced HDACs and KDM6A/B expression, impacting histone acetylation/methylation via a COX2-dependent pathway.
- Combination therapy with ibuprofen and HDAC/HDM inhibitors prevented cancer progression in vivo.
Conclusions:
- Ibuprofen diminishes cancer cell stemness and progression through specific molecular pathways.
- These findings suggest novel therapeutic targets for integrating ibuprofen into cancer treatment strategies.
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