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Updated: Jan 26, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
MSC.sTRAIL Has Better Efficacy than MSC.FL-TRAIL and in Combination with AKTi Blocks Pro-Metastatic Cytokine
Andrea Mohr1, Tianyuan Chu2, Greg N Brooke3
1Cancer and Stem Cell Biology Group, School of Biological Sciences, University of Essex, Colchester CO4 3SQ, UK. amohr@essex.ac.uk.
Abstract:
Cell therapy is a promising new treatment option for cancer. In particular, mesenchymal stem cells (MSCs) have shown potential in delivering therapeutic genes in various tumour models and are now on the verge of being tested in the clinic. A number of therapeutic genes have been examined in this context, including the death ligand TRAIL. For cell therapy, it can be used in its natural form as a full-length and membrane-bound protein (FL-TRAIL) or as an engineered version commonly referred to as soluble TRAIL (sTRAIL). As to which is more therapeutically efficacious, contradicting results have been reported. We discovered that MSCs producing sTRAIL have significantly higher apoptosis-inducing activity than cells expressing FL-TRAIL and found that FL-TRAIL, in contrast to sTRAIL, is not secreted. We also demonstrated that TRAIL does induce the expression of pro-metastatic cytokines in prostate cancer cells, but that this effect could be overcome through combination with an AKT inhibitor. Thus, a combination consisting of small-molecule drugs specifically targeting tumour cells in combination with MSC.sTRAIL, not only provides a way of sensitising cancer cells to TRAIL, but also reduces the issue of side-effect-causing cytokine production. This therapeutic strategy therefore represents a novel targeted treatment option for advanced prostate cancer and other difficult to treat tumours.
Insights
Mesenchymal stem cells (MSCs) engineered to produce soluble TRAIL (sTRAIL) show greater cancer-killing ability than those producing full-length TRAIL (FL-TRAIL). Combining MSC.sTRAIL with AKT inhibitors offers a novel targeted therapy for advanced prostate cancer.
Area of Science:
- Oncology
- Cell Therapy
- Molecular Biology
Background:
- Mesenchymal stem cells (MSCs) are being explored for cancer cell therapy, particularly for delivering therapeutic genes like TRAIL.
- TRAIL exists as full-length membrane-bound (FL-TRAIL) or engineered soluble (sTRAIL) forms, with unclear therapeutic advantages.
Purpose of the Study:
- To compare the efficacy of MSCs producing sTRAIL versus FL-TRAIL in cancer treatment.
- To investigate TRAIL's effect on prostate cancer cells and explore combination therapies.
Main Methods:
- Engineered MSCs to express either FL-TRAIL or sTRAIL.
- Assessed apoptosis-inducing activity and protein secretion.
- Analyzed cytokine expression in prostate cancer cells treated with TRAIL and combination therapies.
Main Results:
- MSCs producing sTRAIL demonstrated significantly higher apoptosis-inducing activity than those producing FL-TRAIL.
- FL-TRAIL was not secreted by MSCs, unlike sTRAIL.
- TRAIL induced pro-metastatic cytokines in prostate cancer cells, an effect mitigated by AKT inhibitors.
Conclusions:
- MSCs engineered to produce sTRAIL are more effective than those producing FL-TRAIL.
- Combination therapy with MSC.sTRAIL and AKT inhibitors represents a promising strategy for advanced prostate cancer, overcoming TRAIL-induced cytokine production.
- This approach offers a novel targeted treatment for difficult-to-treat tumors.
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