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Published on: December 5, 2019
Death of solid tumor cells induced by Fas ligand expressing primary myoblasts
1Department of Molecular Pharmacology, Stanford University School of Medicine, California 94305, USA.
Abstract:
Anticancer therapy for solid tumors suffers from inadequate methods for the localized administration of cytotoxic agents. Fas ligand (FasL) has been reported to be cytotoxic to a variety of cells, including certain tumor cell lines. We therefore postulated that myoblasts could serve as non-transformed gene therapy vehicles for the continuous localized delivery of cytotoxic anticancer agents such as FasL. However, contrary to previous reports, fluorescence activated cell sorting (FACS) analyses revealed that both primary mouse and human myoblasts express Fas, the receptor for FasL. To avoid self-destruction and test the cytotoxic potential of myoblasts, the cells were isolated from mice deficient in Fas (lpr/lpr), the mouse counterpart of human autoimmune lymphoproliferative syndrome (ALPS). These primary mouse myoblasts were transduced with a retroviral vector encoding mouse FasL and expression of a biologically active and soluble form of the molecule was confirmed by the apoptotic demise of cocultured Fas-expressing Jurkat cells, the standard in the field. To test whether the lpr myoblasts expressing FasL could be used in anticancer therapy, human rhabdomyosarcoma derived cell lines were assayed for Fas and then tested in the apoptosis coculture assay. The majority of Fas-expressing muscle tumor cells were rapidly killed. Moreover, FasL expressing myoblasts were remarkably potent; indeed well characterized cytotoxic antibodies to Fas were only 20% as efficient at killing rhabdomyosarcoma cells as FasL expressing myoblasts. These findings together with previous findings suggest that primary myoblasts, defective in Fas but genetically engineered to express FasL, could function as potent anticancer agents for use in the localized destruction of solid tumors in vivo by three synergistic mechanisms: (1) directly via Fas/FasL mediated apoptosis, (2) indirectly via neutrophil infiltration and immunodestruction, and (3) as allogeneic inducers of a bystander effect via B and T cells.
Insights
Genetically engineered myoblasts can deliver Fas ligand (FasL) to kill solid tumors. These modified cells offer a potent new strategy for localized anticancer therapy, enhancing tumor destruction.
Area of Science:
- Oncology
- Gene Therapy
- Cell Biology
Background:
- Current anticancer therapies for solid tumors lack effective localized delivery of cytotoxic agents.
- Fas ligand (FasL) demonstrates cytotoxicity against various cell types, including tumor cells.
- Myoblasts are proposed as potential gene therapy vehicles for localized cytotoxic agent delivery.
Purpose of the Study:
- To investigate the potential of myoblasts as vehicles for localized FasL delivery in anticancer therapy.
- To overcome Fas-mediated self-destruction by using Fas-deficient myoblasts.
- To evaluate the efficacy of FasL-expressing myoblasts against human rhabdomyosarcoma.
Main Methods:
- Isolation of Fas-deficient (lpr/lpr) primary mouse myoblasts.
- Retroviral transduction of myoblasts with mouse FasL gene.
- Confirmation of soluble FasL activity using Fas-expressing Jurkat cells and rhabdomyosarcoma cell lines.
- Assessment of myoblast-mediated apoptosis in tumor cells.
Main Results:
- FasL-expressing myoblasts successfully induced apoptosis in Fas-expressing Jurkat and human rhabdomyosarcoma cells.
- FasL-expressing myoblasts were significantly more potent in killing rhabdomyosarcoma cells than cytotoxic antibodies.
- Myoblasts engineered to express FasL demonstrated potent anticancer activity.
Conclusions:
- Fas-deficient myoblasts engineered to express FasL are effective anticancer agents for localized solid tumor destruction.
- This approach leverages Fas/FasL-mediated apoptosis, neutrophil infiltration, and bystander immune effects for synergistic tumor killing.
- Myoblast-based gene therapy offers a promising strategy for localized treatment of solid tumors.
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