Death of solid tumor cells induced by Fas ligand expressing primary myoblasts

A Hofmann1, H M Blau

  • 1Department of Molecular Pharmacology, Stanford University School of Medicine, California 94305, USA.

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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